
Silanos
Los silanos son compuestos a base de silicio con uno o más grupos orgánicos unidos a un átomo de silicio. Sirven como building blocks cruciales en la síntesis orgánica e inorgánica, especialmente en la modificación de superficies, promoción de la adhesión y la producción de recubrimientos y selladores. Los silanos se utilizan ampliamente en la industria de semiconductores, en el tratamiento de vidrio y como agentes de reticulación en la química de polímeros. En CymitQuimica, ofrecemos una amplia gama de silanos diseñados para tus aplicaciones de investigación e industriales.
Subcategorías de "Silanos"
Se han encontrado 1235 productos de "Silanos"
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1,3,5-TRIISOPROPYLCYCLOTRISILAZANE
CAS:Fórmula:C9H27N3Si3Pureza:95%Forma y color:LiquidPeso molecular:261.59HEXYLTRIMETHOXYSILANE
CAS:<p>Alkyl Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>Hexyltrimethoxysilane; Trimethoxyhexylsilane; Trimethoxysilylhexane<br>Surface modification of TiO2 pigments improves dispersionTrialkoxy silane<br></p>Fórmula:C9H22O3SiPureza:97%Forma y color:Straw LiquidPeso molecular:206.35PHENYLDIMETHYLCHLOROSILANE
CAS:<p>Phenyl-Containing Blocking Agent<br>Used as a protecting group for reactive hydrogens in alcohols, amines, thiols, and carboxylic acids. Organosilanes are hydrogen-like, can be introduced in high yield, and can be removed under selective conditions. They are stable over a wide range of reaction conditions and can be removed in the presence of other functional groups, including other protecting groups. The tolerance of silylated alcohols to chemical transformations summary is presented in Table 1 of the Silicon-Based Blocking Agents brochure.<br>Aromatic Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>Phenyldimethylchlorosilane; Chlorodimethylphenylsilane; Dimethylphenylchlorosilane<br>Viscosity: 1.4 cStΔHvap: 47.7 kJ/molVapor pressure, 25 °: 1 mmForms cuprateUsed in analytical proceduresSummary of selective deprotection conditions is provided in Table 7 through Table 20 of the Silicon-Based Blocking Agents brochure<br></p>Fórmula:C8H11ClSiPureza:97%Forma y color:Straw LiquidPeso molecular:170.71O-(METHACRYLOXYETHYL)-N-(TRIETHOXYSILYLPROPYL)CARBAMATE, 90%
CAS:<p>Methacrylate Functional Trialkoxy Silane<br>Silane coupling agents have the ability to form a durable bond between organic and inorganic materials to generate desired heterogeneous environments or to incorporate the bulk properties of different phases into a uniform composite structure. The general formula has two classes of functionality. The hydrolyzable group forms stable condensation products with siliceous surfaces and other oxides such as those of aluminum, zirconium, tin, titanium, and nickel. The organofunctional group alters the wetting or adhesion characteristics of the substrate, utilizes the substrate to catalyze chemical transformations at the heterogeneous interface, orders the interfacial region, or modifies its partition characteristics, and significantly effects the covalent bond between organic and inorganic materials.<br>O-(Methacryloxyethyl)-N-(triethoxysilylpropyl)carbamate<br>Coupling agent for UV cure systemsHydrophilic monomerUsed in microparticle surface modificationInhibited with MEHQ<br></p>Fórmula:C16H31NO7SiPureza:90%Forma y color:Straw LiquidPeso molecular:377.513-CYANOPROPYLTRIETHOXYSILANE
CAS:Fórmula:C10H21NO3SiPureza:97%Forma y color:Straw LiquidPeso molecular:231.37(3- GLYCIDOXYPROPYL)TRIMETHOXYSILANE
CAS:<p>(3- Glycidoxypropyl)trimethoxysilane; 3-(2,3-epoxypropoxy)propyltrimethoxysilane; trimethoxy-[3-(oxiran-2-ylmethoxy)propyl]silane; 3-(trimethoxysilyl)propyl glycidyl ether; GLYMO<br>Epoxy functional trialkoxy silaneViscosity: 3.2 cStγc of treated surfaces: 38.55 mN/mSpecific wetting surface area: 331 m2/gComponent in aluminum metal bonding adhesivesCoupling agent for epoxy composites employed in electronic "chip" encapsulationComponent in abrasion resistant coatings for plastic opticsUsed to prepare epoxy-containing hybrid organic-inorganic materialsUsed in microparticle surface modificationEpoxy silane treated surfaces convert to hydrophilic-diols when exposed to moisture<br></p>Fórmula:C9H20O5SiPureza:98%Forma y color:Straw LiquidPeso molecular:236.3411-AZIDOUNDECYLTRIMETHOXYSILANE, 95%
CAS:<p>Azide Functional Trialkoxy Silane<br>Silane coupling agents have the ability to form a durable bond between organic and inorganic materials to generate desired heterogeneous environments or to incorporate the bulk properties of different phases into a uniform composite structure. The general formula has two classes of functionality. The hydrolyzable group forms stable condensation products with siliceous surfaces and other oxides such as those of aluminum, zirconium, tin, titanium, and nickel. The organofunctional group alters the wetting or adhesion characteristics of the substrate, utilizes the substrate to catalyze chemical transformations at the heterogeneous interface, orders the interfacial region, or modifies its partition characteristics, and significantly effects the covalent bond between organic and inorganic materials.<br>11-Azidoundecyltrimethoxysilane, 11-(trimethoxysilyl)undecyl azide<br>Coupling agent for surface modificationUsed in "click" chemistryAVOID CONTACT WITH METALS<br></p>Fórmula:C14H31N3O3SiPureza:95%Forma y color:Straw To Amber LiquidPeso molecular:317.56-PHENYLHEXYLDIMETHYL(DIMETHYLAMINO)SILANE
CAS:Fórmula:C16H29NSiPureza:97%Forma y color:Straw LiquidPeso molecular:263.49(N,N-DIMETHYLAMINO)TRIMETHYLSILANE
CAS:<p>Trimethylsilyl Blocking Agent<br>Used as a protecting group for reactive hydrogens in alcohols, amines, thiols, and carboxylic acids. Organosilanes are hydrogen-like, can be introduced in high yield, and can be removed under selective conditions. They are stable over a wide range of reaction conditions and can be removed in the presence of other functional groups, including other protecting groups. The tolerance of silylated alcohols to chemical transformations summary is presented in Table 1 of the Silicon-Based Blocking Agents brochure.<br>Alkyl Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>Dimethylaminotrimethylsilane; Pentamethylsilanamine; Trimethylsilyldimethylamine; TMSDMA<br>ΔHvap: 31.8 kJ/molSelectively silylates equatorial hydroxyl groups in prostaglandin synthesisStronger silylation reagent than HMDS; silylates amino acidsDialkylaminotrimethylsilanes are used in the synthesis of pentamethinium saltsWith aryl aldehydes converts ketones to α,β-unsaturated ketonesSimilar to SID6110.0 and SID3398.0Liberates Me2NH upon reactionSilylates urea-formaldehyde polycondensatesSilylates phosphorous acidsNafion SAC-13 has been shown to be a recyclable catalyst for the trimethylsilylation of primary, secondary, and tertiary alcohols in excellent yields and short reaction timesSummary of selective deprotection conditions is provided in Table 7 through Table 20 of the Silicon-Based Blocking Agents brochure<br></p>Fórmula:C5H15NSiPureza:97%Forma y color:Straw LiquidPeso molecular:117.27N-METHYLAMINOPROPYLTRIMETHOXYSILANE
CAS:<p>N-Methylaminopropyltrimethoxysilane, 3-(trimethoxysilyl)-n-methyl-1-propanamine<br>Secondary amino functional trialkoxy silaneγc of treated surfaces: 31 mN/mpKb 25H2O: 5.18Used in microparticle surface modificationCoupling agent for UV cure and epoxy systemsOrients liquid crystalsReacts with urethane prepolymers to form moisture-curable resins<br></p>Fórmula:C7H19NO3SiPureza:97%Forma y color:Straw LiquidPeso molecular:193.322-CHLOROETHYLTRICHLOROSILANE, 95%
CAS:Fórmula:C2H4Cl4SiPureza:95%Forma y color:Straw LiquidPeso molecular:197.95(3-GLYCIDOXYPROPYL)TRIETHOXYSILANE
CAS:<p>(3-Glycidoxypropyl)triethoxysilane; triethoxy[3-(oxiranylmethoxy)propyl]-silane; 2-[[3- (triethoxysilyl)propoxy]methyl]-oxirane; triethoxy[3- (oxiranylmethoxy)propyl]silane; 3-(2,3- epoxypropoxypropyl)triethoxysilane<br>Epoxy functional trialkoxy silaneViscosity: 3 cSt Coupling agent for latex polymersUsed in microparticle surface modificationPrimer for aluminum and glass to epoxy coatings and adhesives when applied as a 1-2% solution in solventCoupling agent for UV cure and epoxy systemsEpoxy silane treated surfaces convert to hydrophilic-diols when exposed to moisture<br></p>Fórmula:C12H26O5SiForma y color:Straw LiquidPeso molecular:278.421,3-DIVINYL-1,1,3,3-TETRAMETHYLDISILAZANE
CAS:<p>Diolefin Functional Amino Silane<br>Silane coupling agents have the ability to form a durable bond between organic and inorganic materials to generate desired heterogeneous environments or to incorporate the bulk properties of different phases into a uniform composite structure. The general formula has two classes of functionality. The hydrolyzable group forms stable condensation products with siliceous surfaces and other oxides such as those of aluminum, zirconium, tin, titanium, and nickel. The organofunctional group alters the wetting or adhesion characteristics of the substrate, utilizes the substrate to catalyze chemical transformations at the heterogeneous interface, orders the interfacial region, or modifies its partition characteristics, and significantly effects the covalent bond between organic and inorganic materials.<br>DVTMDZ; Bis(vinyldimethylsilyl)amine; N-(Dimethylvinylsilyl)-1,1-dimethyl-1-vinylsilylamine; 1,1,3,3-Tetramethyl-1,3-divinyldisilazane<br>Adhesion promoter for negative photoresistsFor silylation of glass capillary columnsCopolymerizes with ethylene<br></p>Fórmula:C8H19NSi2Pureza:97%Forma y color:LiquidPeso molecular:185.42VINYLDIMETHYLCHLOROSILANE
CAS:Fórmula:C4H9ClSiPureza:97%Forma y color:Straw LiquidPeso molecular:120.652-HYDROXY-4-(3-TRIETHOXYSILYLPROPOXY)DIPHENYLKETONE, tech
CAS:<p>2-Hydroxy-4-(3-triethoxysilylpropoxy)diphenylketone; 4-(3-triethoxysilylpropoxy)-2-hydroxybenzophenone [2-hydroxy-4-[3-(triethoxysilyl)propoxy]phenyl]phenylmethanone<br>UV active trialkoxy silaneAmber liquidViscosity, 25 °C: 125-150 cStUV max: 230, 248, 296 (s), 336Strong UV blocking agent for optically clear coatings,Absorbs from 210-420 nmUsed in Bird-deterrent Glass Coatings<br></p>Fórmula:C22H30O6SiPureza:95%Forma y color:Straw To Amber LiquidPeso molecular:418.56N-PHENYLAMINOPROPYLTRIMETHOXYSILANE
CAS:<p>N-Phenylaminopropyltrimethoxysilane; N-[3-(trimethoxysilyl)propyl]aniline; [3-(trimethoxysilyl)propyl]aniline<br>Secondary amino functional trialkoxy silaneSpecific wetting surface: 307 m2/gCoupling agent for UV cure and epoxy systemsOxidatively stable coupling agent for polyimides, phenolics, epoxiesUsed in microparticle surface modification<br></p>Fórmula:C12H21NO3SiPureza:92%Forma y color:Straw Amber LiquidPeso molecular:255.38TRIETHOXYSILANE
CAS:<p>Tri-substituted Silane Reducing Agent<br>Organosilanes are hydrocarbon-like and possess the ability to serve as both ionic and free-radical reducing agents. These reagents and their reaction by-products are safer and more easily handled and disposed than many other reducing agents. The metallic nature of silicon and its low electronegativity relative to hydrogen lead to polarization of the Si-H bond yielding a hydridic hydrogen and a milder reducing agent compared to aluminum-, boron-, and other metal-based hydrides. A summary of some key silane reductions are presented in Table 1 of the Silicon-Based Reducing Agents brochure.<br>Triethoxysilane; Silicon triethoxide; Triethoxysilylhydride<br>CAUTION: VAPORS CAUSE BLINDNESS — GOGGLES MUST BE WORNDISPROPORTIONATES IN PRESENCE OF BASE TO PYROPHORIC PRODUCTSContains trace Si–Cl for stabilityΔHcomb: -4,604 kJ/molΔHform: 925 kJ/molΔHvap: 175.4 kJ/molSurface tension: 22.3 mN/mVapor pressure, 20 °C: 20.2 mmCritical temperature: 244 °CDipole moment: 1.78 debyeHydrosilylates olefins in presence of PtUsed to convert alkynes to (E)–alkenes via hydrosilylation-desilylationReduces amides to amines in the presence of Zn(OAc)2Used in the reduction of phosphine oxides to phosphinesReduces esters in the presence of zinc hydride catalystReduces aldehydes and ketones to alcohols via the silyl ethers in presence of fluoride ionGives 1,2 reduction of enones to allyl alcoholsExtensive review of silicon based reducing agents: Larson, G.; Fry, J. L. "Ionic and Organometallic-Catalyzed Organosilane Reductions", Wipf, P., Ed.; Wiley, 2007<br></p>Fórmula:C6H16O3SiPureza:97%Forma y color:LiquidPeso molecular:164.283-[METHOXY(POLYETHYLENEOXY)9-12]PROPYLTRIMETHOXYSILANE, tech
CAS:<p>Tipped PEG Silane (591-723 g/mol)<br>PEO, Trimethoxysilane termination utilized for hydrophilic surface modificationPEGylation reagentHydrogen bonding hydrophilic silane<br></p>Fórmula:CH3(C2H4O)9-12(CH2)3OSi(OCH3)3Forma y color:Straw LiquidPeso molecular:591-723TRIMETHYLSILYL TRIFLUOROMETHANESULFONATE
CAS:<p>Trimethylsilyl Blocking Agent<br>Used as a protecting group for reactive hydrogens in alcohols, amines, thiols, and carboxylic acids. Organosilanes are hydrogen-like, can be introduced in high yield, and can be removed under selective conditions. They are stable over a wide range of reaction conditions and can be removed in the presence of other functional groups, including other protecting groups. The tolerance of silylated alcohols to chemical transformations summary is presented in Table 1 of the Silicon-Based Blocking Agents brochure.<br>Trimethylsilyltrifluoromethanesulfonate; Trimethylsilyltriflate; TMSOTf<br>Strong silylating agent for C- or O-silylationsReacts with nitroalkanes to give N,N-bis(trimethylsiloxy)enaminesNafion SAC-13 has been shown to be a recyclable catalyst for the trimethylsilylation of primary, secondary, and tertiary alcohols in excellent yields and short reaction timesSummary of selective deprotection conditions is provided in Table 7 through Table 20 of the Silicon-Based Blocking Agents brochure<br></p>Fórmula:C4H9F3O3SSiForma y color:Straw LiquidPeso molecular:222.25t-BUTYLDIMETHYLCHLOROSILANE
CAS:<p>Trialkylsilyl Blocking Agent<br>Used as a protecting group for reactive hydrogens in alcohols, amines, thiols, and carboxylic acids. Organosilanes are hydrogen-like, can be introduced in high yield, and can be removed under selective conditions. They are stable over a wide range of reaction conditions and can be removed in the presence of other functional groups, including other protecting groups. The tolerance of silylated alcohols to chemical transformations summary is presented in Table 1 of the Silicon-Based Blocking Agents brochure.<br>Alkyl Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>tert-Butyldimethylchlorosilane; TBS-Cl; Chlorodimethyl-t-butylsilane; tert-Butylchlorodimethylsilane; Chloro(1,1-dimethylethyl)dimethylsilane<br>Excellent for 1° and 2° alcoholsSilylation catalyzed by imidazoleBlocking agent widely used in prostaglandin synthesisStable to many reagentsCan be selectively cleaved in presence of acetate, THP and benzyl ethers among othersUsed for the protection of alcohols, amines, thiols, lactams, and carboxylic acidsClean NMR characteristics of protecting groupSilylation reagent - derivatives resistant to Grignards, alkyl lithium compounds, etcFacile removal with flouride ion sourcesSummary of selective deprotection conditions is provided in Table 7 through Table 20 of the Silicon-Based Blocking Agents brochure<br></p>Fórmula:C6H15ClSiPureza:97%Forma y color:Translucent SolidPeso molecular:150.72DIMETHYLSILA-11-CROWN-4, 95%
CAS:<p>Silacrown (206.31 g/mol)<br>1,1-Dimethyl-1,3,6,9,11-tetraoxa-1-silacycloundecaneCrown ether analogDual end protected PEG<br></p>Fórmula:C8H18O4SiPureza:95%Forma y color:LiquidPeso molecular:206.313-[METHOXY(POLYETHYLENEOXY)6-9]PROPYLTRICHLOROSILANE, tech
CAS:<p>Tipped PEG Silane (472-604 g/mol)<br>90% oligomersPEO, Trichlorosilane termination utilized for hydrophilic surface modificationPEGylation reagentHydrogen bonding hydrophilic silaneProvides protein antifouling surface<br></p>Fórmula:CH3O(C2H4O)6-9(CH2)3Cl3SiForma y color:Straw LiquidPeso molecular:472-604n-OCTYLSILANE
CAS:<p>Mono-substituted Silane Reducing Agent<br>Organosilanes are hydrocarbon-like and possess the ability to serve as both ionic and free-radical reducing agents. These reagents and their reaction by-products are safer and more easily handled and disposed than many other reducing agents. The metallic nature of silicon and its low electronegativity relative to hydrogen lead to polarization of the Si-H bond yielding a hydridic hydrogen and a milder reducing agent compared to aluminum-, boron-, and other metal-based hydrides. A summary of some key silane reductions are presented in Table 1 of the Silicon-Based Reducing Agents brochure.<br>Trihydridosilane<br>Silyl Hydrides are a distinct class of silanes that behave and react very differently than conventional silane coupling agents. They react with the liberation of byproduct hydrogen. Silyl hydrides can react with hydroxylic surfaces under both non-catalyzed and catalyzed conditions by a dehydrogenative coupling mechanism. Trihydridosilanes react with a variety of pure metal surfaces including gold, titanium, zirconium and amorphous silicon, by a dissociative adsorption mechanism. The reactions generally take place at room temperature and can be conducted in the vapor phase or with the pure silane or solutions of the silane in aprotic solvents. Deposition should not be conducted in water, alcohol or protic solvents.<br>n-Octylsilane; 1-Sila-nonane<br>Fugitive inhibitor of hydrosilylationForms SAMs on titanium, gold and silicon surfacesExtensive review of silicon based reducing agents: Larson, G.; Fry, J. L. "Ionic and Organometallic-Catalyzed Organosilane Reductions", Wipf, P., Ed.; Wiley, 2007<br></p>Fórmula:C8H20SiPureza:97%Forma y color:LiquidPeso molecular:144.33DI-n-BUTYLDIMETHOXYSILANE
CAS:<p>Alkyl Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>Di-n-butyldimethoxysilane; Dimethoxydi-n-butylsilane<br>Dialkoxy silane<br></p>Fórmula:C10H24O2SiPureza:97%Forma y color:Straw LiquidPeso molecular:204.394-PHENYLBUTYLTRIMETHOXYSILANE
CAS:Fórmula:C13H22O3SiPureza:97%Forma y color:Straw LiquidPeso molecular:254.4DECAMETHYLCYCLOPENTASILOXANE
CAS:Fórmula:C10H30O5Si5Pureza:97%Forma y color:LiquidPeso molecular:370.771-[3-(2-AMINOETHYL)-3-AMINOISOBUTYL]-1,1,3,3,3-PENTAETHOXY-1,3-DISILAPROPANE, 95%
CAS:<p>1-[3-(2-Aminoethyl)-3-aminoisobutyl]-1,1,3,3,3-pentaethoxy-1,3-disilapropane; 3-[2-(aminoethylamino-5-methyl)]-1,1,1,3,3-pentaethoxydisilahexane<br>Diamine functional pendant dipodal silaneAdhesion promoter for metal substratesPrimary amine coupling agent for UV cure and epoxy systems<br></p>Fórmula:C17H42N2O5Si2Pureza:95%Peso molecular:410.7DIPHENYLDIETHOXYSILANE
CAS:<p>Arylsilane Cross-Coupling Agent<br>The cross-coupling reaction is a highly useful methodology for the formation of carbon-carbon bonds. It involves two reagents, with one typically being a suitable organometallic reagent - the nucleophile - and the other a suitable organic substrate, normally an unsaturated halide, tosylate or similar - the electrophile.<br>Aromatic Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>Diphenyldiethoxysilane; Diethoxydiphenylsilane; 1,1'-(Diethoxysilylene)bis-benzene<br>Vapor pressure, 125 °: 2 mmAlternative to phenyltriethoxysilane for the cross-coupling of a phenyl groupProvides hydrophobic coatings with good thermal and UV resistanceDialkoxy silane<br></p>Fórmula:C16H20O2SiPureza:97%Forma y color:Straw LiquidPeso molecular:272.42n-BUTYLDIMETHYL(DIMETHYLAMINO)SILANE
CAS:<p>Trialkylsilyl Blocking Agent<br>Used as a protecting group for reactive hydrogens in alcohols, amines, thiols, and carboxylic acids. Organosilanes are hydrogen-like, can be introduced in high yield, and can be removed under selective conditions. They are stable over a wide range of reaction conditions and can be removed in the presence of other functional groups, including other protecting groups. The tolerance of silylated alcohols to chemical transformations summary is presented in Table 1 of the Silicon-Based Blocking Agents brochure.<br>Alkyl Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>n-Butyldimethyl(dimethylamino)silane; Trimethylsilyldimethylamine<br>Reactive aminofunctional organosilaneHighly reactive reagent for bonded phases without acidic byproductSummary of selective deprotection conditions is provided in Table 7 through Table 20 of the Silicon-Based Blocking Agents brochure<br></p>Fórmula:C8H21NSiPureza:97%Forma y color:Straw LiquidPeso molecular:159.35n-PROPYLMETHYLDICHLOROSILANE
CAS:<p>Alkyl Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>n-Propylmethyldichlorosilane; Dichloromethyl-n-propylsilane<br>Viscosity, 20 °C: 0.8 cSt<br></p>Fórmula:C4H10Cl2SiPureza:97%Forma y color:LiquidPeso molecular:157.113-METHOXYPROPYLTRIMETHOXYSILANE
CAS:Fórmula:C7H18O4SiPureza:97%Forma y color:Straw LiquidPeso molecular:194.32-CYANOETHYLTRIETHOXYSILANE
CAS:Fórmula:C9H19NO3SiPureza:97%Forma y color:Straw LiquidPeso molecular:217.34TRIS(DIMETHYLAMINO)SILANE
CAS:<p>ALD Material<br>Atomic layer deposition (ALD) is a chemically self-limiting deposition technique that is based on the sequential use of a gaseous chemical process. A thin film (as fine as -0.1 Å per cycle) results from repeating the deposition sequence as many times as needed to reach a certain thickness. The major characteristic of the films is the resulting conformality and the controlled deposition manner. Precursor selection is key in ALD processes, namely finding molecules which will have enough reactivity to produce the desired films yet are stable enough to be handled and safely delivered to the reaction chamber.<br>Tris(dimethylamino)silane; Tris(dimethylamido)silylhydride; N,N,N',N',N'',N''-Hexamethylsilanetriamine<br>AIR TRANSPORT FORBIDDENVapor pressure, 4 °C: 1 6 mmHydrosilylates olefins in presence of Rh2Cl2(CO)4Reacts with ammonia to form silicon nitride prepolymersEmployed in low pressure CVD of silicon nitride<br></p>Fórmula:C6H19N3SiPureza:97%Forma y color:Straw LiquidPeso molecular:161.323-AMINOPROPYLTRIMETHOXYSILANE
CAS:<p>Monoamine Functional Trialkoxy Silane<br>Silane coupling agents have the ability to form a durable bond between organic and inorganic materials to generate desired heterogeneous environments or to incorporate the bulk properties of different phases into a uniform composite structure. The general formula has two classes of functionality. The hydrolyzable group forms stable condensation products with siliceous surfaces and other oxides such as those of aluminum, zirconium, tin, titanium, and nickel. The organofunctional group alters the wetting or adhesion characteristics of the substrate, utilizes the substrate to catalyze chemical transformations at the heterogeneous interface, orders the interfacial region, or modifies its partition characteristics, and significantly effects the covalent bond between organic and inorganic materials.<br>3-Aminopropyltrimethoxysilane, Trimethoxysilylpropylamine, ?-Aminopropyltrimethoxysilane, APTES, AMEO, GAPS, A-1100<br>Higher purity material available as SIA0611.1Vapor pressure, 67 °: 5 mmSuperior reactivity in vapor phase and non-aqueous surface treatmentsPrimary amine coupling agent for UV cure and epoxy systemsHydrolysis rate vs SIA0610.0 : 6:1Used to immobilize Cu and Zn Schiff base precatalysts for formation of cyclic carbonatesUsed in microparticle surface modification<br></p>Fórmula:C6H17NO3SiPureza:97%Forma y color:Straw LiquidPeso molecular:179.29DIMETHYLDICHLOROSILANE, 98%
CAS:<p>Bridging Silicon-Based Blocking Agent<br>Used as a protecting group for reactive hydrogens in alcohols, amines, thiols, and carboxylic acids. Organosilanes are hydrogen-like, can be introduced in high yield, and can be removed under selective conditions. They are stable over a wide range of reaction conditions and can be removed in the presence of other functional groups, including other protecting groups. The tolerance of silylated alcohols to chemical transformations summary is presented in Table 1 of the Silicon-Based Blocking Agents brochure.<br>Alkyl Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>Dimethyldichlorosilane; Dichlorodimethylsilane; DMS<br>AIR TRANSPORT FORBIDDENViscosity: 0.47 cStVapor pressure, 17 °C: 100 mmSpecific heat: 0.92 J/g/°ΔHcomb: -2,055 kJ/molΔHvap: 33.5 kJ/molSurface tension: 20.1 mN/mCoefficient of thermal expansion: 1.3 x 10-3Critical temperature: 247.2 °CCritical pressure: 34.4 atmFundamental monomer for siliconesEmployed in the tethering of two olefins for the cross metathesis-coupling step in the synthesis of Attenol AAids in the intramolecular Pinacol reactionReacts with alcohols, diols, and hydroxy carboxylic acidsEmployed as a protecting group/template in C-glycoside synthesisHigher purity available as SID4120.1Summary of selective deprotection conditions is provided in Table 7 through Table 20 of the Silicon-Based Blocking Agents brochure<br></p>Fórmula:C2H6Cl2SiPureza:98%Forma y color:Straw Amber LiquidPeso molecular:129.06BIS(TRIMETHYLSILYL)CARBODIIMIDE
CAS:Fórmula:C7H18N2Si2Pureza:97%Forma y color:Straw LiquidPeso molecular:186.4n-OCTADECYLMETHYLBIS(DIMETHYLAMINO)SILANE
Fórmula:C23H52N2SiPureza:92%Forma y color:Straw LiquidPeso molecular:384.76DI-n-BUTYLDICHLOROSILANE
CAS:<p>Alkyl Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>Di-n-butyldichlorosilane; Dichlorodi-n-butylsilane<br></p>Fórmula:C8H18Cl2SiPureza:96%Forma y color:Straw LiquidPeso molecular:213.22N-(TRIMETHYLSILYL)IMIDAZOLE
CAS:<p>Trimethylsilyl Blocking Agent<br>Used as a protecting group for reactive hydrogens in alcohols, amines, thiols, and carboxylic acids. Organosilanes are hydrogen-like, can be introduced in high yield, and can be removed under selective conditions. They are stable over a wide range of reaction conditions and can be removed in the presence of other functional groups, including other protecting groups. The tolerance of silylated alcohols to chemical transformations summary is presented in Table 1 of the Silicon-Based Blocking Agents brochure.<br>Trimethylsilylimidazole; TMSIM; 1-(Trimethylsilyl)imidazole<br>Powerful silylating agent for alcoholsDoes not react with aliphatic aminesNafion SAC-13 has been shown to be a recyclable catalyst for the trimethylsilylation of primary, secondary, and tertiary alcohols in excellent yields and short reaction timesSummary of selective deprotection conditions is provided in Table 7 through Table 20 of the Silicon-Based Blocking Agents brochure<br></p>Fórmula:C6H12N2SiPureza:97%Forma y color:Straw LiquidPeso molecular:140.26VINYLTRIISOPROPENOXYSILANE, tech
CAS:<p>Olefin Functional Trialkoxy Silane<br>Silane coupling agents have the ability to form a durable bond between organic and inorganic materials to generate desired heterogeneous environments or to incorporate the bulk properties of different phases into a uniform composite structure. The general formula has two classes of functionality. The hydrolyzable group forms stable condensation products with siliceous surfaces and other oxides such as those of aluminum, zirconium, tin, titanium, and nickel. The organofunctional group alters the wetting or adhesion characteristics of the substrate, utilizes the substrate to catalyze chemical transformations at the heterogeneous interface, orders the interfacial region, or modifies its partition characteristics, and significantly effects the covalent bond between organic and inorganic materials.<br>Vinyltriisopropenoxysilane; Triisopropenoxyethenylsilane; Tris(isopropenyloxy)vinylsilane; Triisopropenoxysilylethylene<br>Employed as a cross-linker and in vapor phase derivatizationByproduct is acetoneNeutral crosslinker for high-speed moisture-cure (enoxy-cure) silicones<br></p>Fórmula:C11H18O3SiPureza:97%Forma y color:LiquidPeso molecular:226.351,3-BIS(CYANOPROPYL)TETRAMETHYLDISILOXANE, 92%
CAS:Fórmula:C12H24N2OSi2Pureza:92%Forma y color:Straw LiquidPeso molecular:268.51(TRIDECAFLUORO-1,1,2,2-TETRAHYDROOCTYL)TRICHLOROSILANE
CAS:Fórmula:C8H4Cl3F13SiPureza:97%Forma y color:Straw LiquidPeso molecular:481.55TRIS(3-TRIMETHOXYSILYLPROPYL)ISOCYANURATE, tech
CAS:<p>Tris(3-trimethoxysilylpropyl)isocyanurate; 1,3,5-tris[3-(trimethoxysilyl)propyl]-1,3,5-triazine-2,4,6(1h,3h,5h)-trione<br>Masked isocyanate functional trialkoxy silaneViscosity: 150-350 cStCoupling agent for polyimides to silicon metalAdhesion promoter for hotmelt adhesivesForms periodic mesoporous silicas<br></p>Fórmula:C21H45N3O12Si3Pureza:95% functional actives (contains analogous compounds)Forma y color:Straw LiquidPeso molecular:615.863-[HYDROXY(POLYETHYLENEOXY)PROPYL]HEPTAMETHYLTRISILOXANE, 90%
CAS:<p>PEGylated Silicone, Trisiloxane (550-650 g/mol)<br>PEO, PEG, Hydroxyl terminated trisiloxane utilized for hydrophilic surface modificationPEGylation reagentViscosity: 35 cSt<br></p>Fórmula:HO(CH2CH2O)6-9(CH2)3(CH3)[OSi(CH3)3]2SiPureza:90%Forma y color:LiquidPeso molecular:550-6501,4-BIS(HYDROXYDIMETHYLSILYL)BENZENE, tech
CAS:Fórmula:C10H18O2Si2Forma y color:White SolidPeso molecular:226.421,8-BIS(TRIETHOXYSILYL)OCTANE
CAS:<p>Alkyl Silane - Dipodal Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>Non Functional Alkoxy Silane<br>Silane coupling agents have the ability to form a durable bond between organic and inorganic materials to generate desired heterogeneous environments or to incorporate the bulk properties of different phases into a uniform composite structure. The general formula has two classes of functionality. The hydrolyzable group forms stable condensation products with siliceous surfaces and other oxides such as those of aluminum, zirconium, tin, titanium, and nickel. The organofunctional group alters the wetting or adhesion characteristics of the substrate, utilizes the substrate to catalyze chemical transformations at the heterogeneous interface, orders the interfacial region, or modifies its partition characteristics, and significantly effects the covalent bond between organic and inorganic materials.<br>Dipodal Silane<br>Dipodal silanes are a series of adhesion promoters that have intrinsic hydrolytic stabilities up to ~10,000 times greater than conventional silanes and are used in applications such as plastic optics, multilayer printed circuit boards and as adhesive primers for ferrous and nonferrous metals. They have the ability to form up to six bonds to a substrate compared to conventional silanes with the ability to form only three bonds to a substrate. Many conventional coupling agents are frequently used in combination with 10-40% of a non-functional dipodal silane, where the conventional coupling agent provides the appropriate functionality for the application, and the non-functional dipodal silane provides increased durability. Also known as bis-silanes additives enhance hydrolytic stability, which impacts on increased product shelf life, ensures better substrate bonding and also leads to improved mechanical properties in coatings as well as composite applications.<br>1,8-Bis(triethoxysilyl)octane; 4,4,13,13-Tetraethoxy-3,14-dioxa-4,13-disilahexadecane<br>Employed in sol-gel synthesis of mesoporous structuresCrosslinker for moisture-cure silicone RTVs with improved environmental resistanceSol-gels of α,ω-bis(trialkoxysilyl)alkanes reported<br></p>Fórmula:C20H46O6Si2Pureza:97%Forma y color:LiquidPeso molecular:438.76Ethyl [(tert-Butyldimethylsilyl)oxy]acetate
CAS:Producto controlado<p>Applications Ethyl [(tert-Butyldimethylsilyl)oxy]acetate (cas# 67226-78-2) is a compound useful in organic synthesis.<br></p>Fórmula:C10H22O3SiForma y color:NeatPeso molecular:218.37Ethylenedithiobis(trimethylsilane) [Protecting Reagent for Aldehydes and Ketones]
CAS:Fórmula:C8H22S2Si2Pureza:>97.0%(GC)Forma y color:Colorless to Almost colorless clear liquidPeso molecular:238.551,1,3,3,5,5-Hexaethoxy-1,3,5-trisilacyclohexane
CAS:Fórmula:C15H36O6Si3Pureza:>90.0%(GC)Forma y color:Colorless to Almost colorless clear liquidPeso molecular:396.70N-Benzyltrimethylsilylamine
CAS:Fórmula:C10H17NSiPureza:>98.0%(T)Forma y color:Colorless to Almost colorless clear liquidPeso molecular:179.342-Propynyl [3-(Triethoxysilyl)propyl]carbamate
CAS:Fórmula:C13H25NO5SiPureza:>90.0%(GC)Forma y color:Colorless to Yellow clear liquidPeso molecular:303.43N-Methyl-3-(triethoxysilyl)propan-1-amine
CAS:Fórmula:C10H25NO3SiPureza:>97.0%(GC)(T)Forma y color:Colorless to Light yellow clear liquidPeso molecular:235.402,5-Bis[(trimethylsilyl)ethynyl]thiophene
CAS:Fórmula:C14H20SSi2Pureza:>96.0%(GC)Forma y color:Light yellow to Yellow to Orange powder to crystalPeso molecular:276.541-Methyl-3-[3-(trimethoxysilyl)propyl]-1H-imidazol-3-ium Chloride
CAS:Fórmula:C10H21ClN2O3SiPureza:>95.0%(T)(HPLC)Forma y color:Colorless to Light yellow to Light orange clear liquidPeso molecular:280.82tert-Butoxydiphenylchlorosilane (stabilized with CaCO3)
CAS:Fórmula:C16H19ClOSiPureza:>95.0%(GC)Forma y color:Colorless to Almost colorless clear liquidPeso molecular:290.86Silanol terminated polydimethylsiloxane cSt 5000
CAS:<p>DMS-S35 - Silanol terminated polydimethylsiloxane cSt 5000</p>Forma y color:Liquid, ClearPeso molecular:0.02-[Methoxy(polyethyleneoxy)6-9propyl]trimethoxysilane
CAS:<p>S25235 - 2-[Methoxy(polyethyleneoxy)6-9propyl]trimethoxysilane</p>Fórmula:(C2H4O2)nC7H18O3SiPureza:90%Forma y color:LiquidPeso molecular:459-591Aminopropyl terminated polydimethylsiloxane cSt 4,000-6,000
CAS:<p>DMS-A35 - Aminopropyl terminated polydimethylsiloxane cSt 4,000-6,000</p>Forma y color:Liquid, ClearPeso molecular:0.0N-Ethylaminoisobutyl terminated Polydimethylsiloxane cSt 8-12
CAS:<p>DMS-A21 - Aminopropyl terminated polydimethylsiloxane cSt 100-120</p>Forma y color:Liquid, ClearPeso molecular:338.187722538Silanol terminated polydimethylsiloxanes cSt 50,000
CAS:<p>DMS-S45 - Silanol terminated polydimethylsiloxanes cSt 50,000</p>Forma y color:Liquid, ClearPeso molecular:0.0Aminoproplyterminated polydimethylsiloxane cSt 20-30
CAS:<p>DMS-A12 - Aminoproplyterminated polydimethylsiloxane cSt 20-30</p>Forma y color:Liquid, ClearPeso molecular:338.187722538MonoCarbinol terminated functional Polydimethylsiloxane - symmetric cSt 35-40
CAS:<p>MCS-C13 - MonoCarbinol terminated functional Polydimethylsiloxane - symmetric cSt 35-40</p>Forma y color:Liquid, Clear LiquidPeso molecular:0.03-(Triallylsilyl)propyl Acrylate (stabilized with MEHQ)
CAS:Fórmula:C15H24O2SiPureza:>92.0%(GC)Forma y color:Light yellow to Brown clear liquidPeso molecular:264.44(Trifluoromethyl)Trimethylsilane
CAS:Fórmula:C4H9F3SiPureza:98%Forma y color:LiquidPeso molecular:142.1950PHENETHYLTRIMETHOXYSILANE, tech
CAS:<p>Aromatic Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>Phenethyltrimethoxysilane; Phenylethyltrimethoxysilane; Trimethoxy(2-phenylethyl)silane<br>Contains α-, β-isomersComponent in optical coating resinsIn combination with TEOS,SIT7110.0, forms hybrid silicalite-1 molecular sieves<br></p>Fórmula:C11H18O3SiPureza:97%Forma y color:Straw To Dark Amber LiquidPeso molecular:226.35Ref: 3H-SIP6722.6
Producto descatalogado1,5-DICHLOROHEXAMETHYLTRISILOXANE, tech
CAS:<p>Alkyl Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>1,5-Dichlorohexamethyltrisiloxane; Hexamethyldichlorotrisiloxane; 1,5-Dichloro-1,1,3,3,5,5-hexamethyltrisiloxane<br>ΔHvap: 47.7 kJ/molVapor pressure, 50 °C: 1 mm<br></p>Fórmula:C6H18Cl2O2Si3Pureza:92%Forma y color:Straw Amber LiquidPeso molecular:277.37PHENYLMETHYLDICHLOROSILANE
CAS:<p>Aromatic Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>Arylsilane Cross-Coupling Agent<br>The cross-coupling reaction is a highly useful methodology for the formation of carbon-carbon bonds. It involves two reagents, with one typically being a suitable organometallic reagent - the nucleophile - and the other a suitable organic substrate, normally an unsaturated halide, tosylate or similar - the electrophile.<br>Phenylmethyldichlorosilane; Methylphenyldichlorosilane; Dichloromethylphenylsilane<br>Viscosity, 20 °C: 1.2 cStΔHvap: 48.1 kJ/molVapor pressure, 82.5 °C: 13 mmMonomer for high temperature siliconesReacts well under the influence of NaOH versus fluoride activation w/ aryl chlorides, bromides, and iodides<br></p>Fórmula:C7H8Cl2SiPureza:97%Forma y color:LiquidPeso molecular:191.13Ref: 3H-SIP6738.0
Producto descatalogado(CYCLOHEXYLAMINOMETHYL)TRIETHOXYSILANE
CAS:<p>(N-Cyclohexylaminomethyl)triethoxysilane; [(triethoxysilyl)methyl]aminocyclohexane<br>Secondary amino functional trialkoxy silaneInternal secondary amine coupling agent for UV cure and epoxy systemsUsed in microparticle surface modification<br></p>Fórmula:C13H29NO3SiPureza:95%Forma y color:Clear To Straw LiquidPeso molecular:275.46DODECAFLUORODEC-9-ENE-1-YLTRIMETHOXYSILANE
CAS:<p>Olefin Functional Trialkoxy Silane<br>Silane coupling agents have the ability to form a durable bond between organic and inorganic materials to generate desired heterogeneous environments or to incorporate the bulk properties of different phases into a uniform composite structure. The general formula has two classes of functionality. The hydrolyzable group forms stable condensation products with siliceous surfaces and other oxides such as those of aluminum, zirconium, tin, titanium, and nickel. The organofunctional group alters the wetting or adhesion characteristics of the substrate, utilizes the substrate to catalyze chemical transformations at the heterogeneous interface, orders the interfacial region, or modifies its partition characteristics, and significantly effects the covalent bond between organic and inorganic materials.<br>9-Trimethoxysilyl-3,3,4,4,5,5,6,6,7,7,8,8-dodecafluorodecene; Dodecafluorodec-9-ene-1-yltrimethoxysilane<br>Forms self-assembled monolayers; reagent for immobilization of DNAUsed in microparticle surface modificationHalogenated alkyl hydrophobic linkerSimilar to discontinued product, SIH5919.0<br></p>Fórmula:C13H16F12O3SiPureza:97%Forma y color:Straw LiquidPeso molecular:476.33N-(2-AMINOETHYL)-3-AMINOPROPYLTRIMETHOXYSILANE-PROPYLTRIMETHOXYSILANE, oligomeric co-hydrolysate
<p>Diamine Functional Polymeric Silane<br>Silane coupling agents have the ability to form a durable bond between organic and inorganic materials to generate desired heterogeneous environments or to incorporate the bulk properties of different phases into a uniform composite structure. The general formula has two classes of functionality. The hydrolyzable group forms stable condensation products with siliceous surfaces and other oxides such as those of aluminum, zirconium, tin, titanium, and nickel. The organofunctional group alters the wetting or adhesion characteristics of the substrate, utilizes the substrate to catalyze chemical transformations at the heterogeneous interface, orders the interfacial region, or modifies its partition characteristics, and significantly effects the covalent bond between organic and inorganic materials.<br>N-(2-Aminoethyl)-3-aminopropyltrimethoxsilane-propyltrimethoxysilane,N-[3-(trimethoxysilyl)propyl]ethylenediamine-(trimethoxysilyl)propane, oligomeric co-hydrolysate<br>Cohydrolysate of SIA0591.1 and SIP6918.0<br></p>Forma y color:Straw LiquidPeso molecular:222.36PHENYLMETHYLDIMETHOXYSILANE
CAS:<p>Aromatic Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>Phenylmethyldimethoxysilane; Methylphenyldimethoxysilane; Dimethoxymethylphenylsilane<br>Viscosity, 20 °C: 1.65 cStAdditive to coupling agent systems, increasing interface flexibility, UV stabilityDialkoxy silane<br></p>Fórmula:C9H14O2SiPureza:97%Forma y color:Straw LiquidPeso molecular:182.29Ref: 3H-SIP6740.0
Producto descatalogadoBIS(DIETHYLAMINO)SILANE
CAS:Fórmula:C8H22N2SiPureza:97%Forma y color:Straw LiquidPeso molecular:174.163-ACRYLAMIDOPROPYLTRIS(TRIMETHYLSILOXY)SILANE, tech
CAS:Fórmula:C15H37NO4Si4Pureza:95%Forma y color:SolidPeso molecular:407.8TRIETHYLSILANE, 98%
CAS:<p>Tri-substituted Silane Reducing Agent<br>Organosilanes are hydrocarbon-like and possess the ability to serve as both ionic and free-radical reducing agents. These reagents and their reaction by-products are safer and more easily handled and disposed than many other reducing agents. The metallic nature of silicon and its low electronegativity relative to hydrogen lead to polarization of the Si-H bond yielding a hydridic hydrogen and a milder reducing agent compared to aluminum-, boron-, and other metal-based hydrides. A summary of some key silane reductions are presented in Table 1 of the Silicon-Based Reducing Agents brochure.<br>Triethylsilane; Triethylsilyl hydride; Triethylsilicon hydride<br>Viscosity: 4.9 cStDipole moment: 0.75 debyeSurface tension: 20.7 mN/mΔHform: -172 kJ/molΔHcomb: -5,324 kJ/molVapor pressure, 20 °: 40 mmSilylates tertiary alcohols in presence of tris(pentafluorophenyl)boraneSilylates arenes in presence of Ru catalyst and t-butylethyleneUsed in reductive cyclization of ynalsReadily converted directly to triethylsilyl carboxylatesUsed to reduce metal saltsEnhances deprotection of t-butoxycarbonyl-protected amines and tert-butyl estersUsed in the reductive amidation of oxazolidinones with amino acids to provide dipeptidesConverts aldehydes to symmetrical and unsymmetrical ethersUsed in the ‘in-situ’ preparation of diborane and haloboranesExtensive review of silicon based reducing agents: Larson, G.; Fry, J. L. "Ionic and Organometallic-Catalyzed Organosilane Reductions", Wipf, P., Ed.; Wiley, 2007<br></p>Fórmula:C6H16SiPureza:98%Forma y color:Colourless LiquidPeso molecular:116.28Ref: 3H-SIT8330.0
Producto descatalogado(3-GLYCIDOXYPROPYL)DIMETHYLETHOXYSILANE
CAS:<p>(3-Glycidoxypropyl)dimethylethoxysilane; 3-(2,3-epoxypropoxypropyl)dimethylethoxysilane<br>Epoxy functional monoalkoxy silaneUsed in microparticle surface modificationCoupling agent for UV cure and epoxy systemsEpoxy silane treated surfaces convert to hydrophilic-diols when exposed to moisture<br></p>Fórmula:C10H22O3SiPureza:97%Forma y color:Straw LiquidPeso molecular:218.371,3,5,7,9-PENTAMETHYLCYCLOPENTASILOXANE, 90%
CAS:<p>Siloxane-Based Silane Reducing Agent<br>Organosilanes are hydrocarbon-like and possess the ability to serve as both ionic and free-radical reducing agents. These reagents and their reaction by-products are safer and more easily handled and disposed than many other reducing agents. The metallic nature of silicon and its low electronegativity relative to hydrogen lead to polarization of the Si-H bond yielding a hydridic hydrogen and a milder reducing agent compared to aluminum-, boron-, and other metal-based hydrides. A summary of some key silane reductions are presented in Table 1 of the Silicon-Based Reducing Agents brochure.<br>1,3,5,7,9-Pentamethylcyclopentasiloxane; D'5; Methyl hydrogen cyclic pentamer; 2,4,6,8,10-Pentamethylcyclopentasiloxane<br>ΔHvap: 47.3 kJ/molContains other cyclic homologsExtensive review of silicon based reducing agents: Larson, G.; Fry, J. L. "Ionic and Organometallic-Catalyzed Organosilane Reductions", Wipf, P., Ed.; Wiley, 2007<br></p>Fórmula:C5H20O5Si5Pureza:90%Forma y color:LiquidPeso molecular:300.64Ref: 3H-SIP6718.0
Producto descatalogadon-OCTADECYLDIMETHYLCHLOROSILANE, 70% in toluene
CAS:<p>Alkyl Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>n-Octadecyldimethylchlorosilane; Dimethyl-n-octadecylchlorosilane; Chlorodimethyloctadecylsilane; Chlorodimethylsilyl-n-octadecane<br>Contains 5-10% C18 isomers70% in toluene<br></p>Fórmula:C20H43ClSiForma y color:Straw Amber LiquidPeso molecular:347.13-ISOCYANOTOPROPYLTRIMETHOXYSILANE, 92%
CAS:<p>3-Isocyanotopropyltrimethoxysilane; trimethoxysilylpropylisocyanate<br>Isocyanate functional trialkoxy silaneViscosity: 1.4 cStCoupling agent for urethanes, polyols, and aminesComponent in hybrid organic/inorganic urethanes<br></p>Fórmula:C7H15NO4SiPureza:92%Forma y color:Straw LiquidPeso molecular:205.29Ref: 3H-SII6456.0
Producto descatalogado1,3-DIVINYLTETRAMETHYLDISILOXANE
CAS:<p>Alkenylsilane Cross-Coupling Agent<br>The cross-coupling reaction is a highly useful methodology for the formation of carbon-carbon bonds. It involves two reagents, with one typically being a suitable organometallic reagent - the nucleophile - and the other a suitable organic substrate, normally an unsaturated halide, tosylate or similar - the electrophile.<br>1,3-Divinyltetramethyldisiloxane; Diethenyltetramethyldisiloxane; Tetramethyldivinyldisiloxane; Divinyltetramethyldisiloxane<br>Silicone end-capperPotential vinyl nucleophile in cross-coupling reactionsModifier for vinyl addition silicone formulationsPotential vinyl donor in cross-coupling reactionsExtensive review of silicon based cross-coupling agents: Denmark, S. E. et al. "Organic Reactions, Volume 75" Denmark, S. E. ed., John Wiley and Sons, 233, 2011<br></p>Fórmula:C8H18OSi2Pureza:97%Forma y color:LiquidPeso molecular:186.4Ref: 3H-SID4613.0
Producto descatalogadoPHENYLMETHYLBIS(DIMETHYLAMINO)SILANE
CAS:<p>Aromatic Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>Phenylmethylbis(dimethylamino)silane; Bis(dimethylamino)methylphenylsilane; Bis(dimethylamino)phenylmethylsilane; N,N,N',N',1-Pentamethyl-1-phenylsilanediamine<br></p>Fórmula:C11H20N2SiPureza:97%Forma y color:Straw LiquidPeso molecular:208.38SILICON DIOXIDE, amorphous GEL, 30% in isopropanol
CAS:Fórmula:SiO2Forma y color:Translucent LiquidPeso molecular:60.09N-(2-AMINOETHYL)-3-AMINOPROPYLTRIETHOXYSILANE, 92%
CAS:<p>Diamino Functional Trialkoxy Silane<br>Silane coupling agents have the ability to form a durable bond between organic and inorganic materials to generate desired heterogeneous environments or to incorporate the bulk properties of different phases into a uniform composite structure. The general formula has two classes of functionality. The hydrolyzable group forms stable condensation products with siliceous surfaces and other oxides such as those of aluminum, zirconium, tin, titanium, and nickel. The organofunctional group alters the wetting or adhesion characteristics of the substrate, utilizes the substrate to catalyze chemical transformations at the heterogeneous interface, orders the interfacial region, or modifies its partition characteristics, and significantly effects the covalent bond between organic and inorganic materials.<br>N-(2-Aminoethyl)-3-aminopropyltriethoxysilane; N-[3-(Triethoxysilyl)propyl]-1,2-ethanediamine; N-[3-(Triethoxysilyl)propyl]-ethylenediamine<br>Primary amine with an internal secondary amine coupling agent for UV cure and epoxy systemsUsed in microparticle surface modificationSlower hydrolysis rate than SIA0591.0 and SIA0592.6<br></p>Fórmula:C11H28N2O3SiPureza:92%Forma y color:Straw LiquidPeso molecular:264.55(3-GLYCIDOXYPROPYL)BIS(TRIMETHYLSILOXY)METHYLSILANE
CAS:Fórmula:C13H32O4Si3Pureza:97% including isomersForma y color:Straw LiquidPeso molecular:336.65STYRYLETHYLTRIS(TRIMETHYLSILOXY)SILANE, mixed isomers, tech
CAS:Fórmula:C19H38O3Si4Pureza:techForma y color:Straw LiquidPeso molecular:426.84TRIS(TRIMETHYLSILOXY)CHLOROSILANE
CAS:Fórmula:C9H27ClO3Si4Pureza:97%Forma y color:Straw LiquidPeso molecular:331.11,3-DIPHENYLTETRAKIS(DIMETHYLSILOXY)DISILOXANE, 92%
CAS:Fórmula:C20H38O5Si6Pureza:92%Forma y color:LiquidPeso molecular:527.031,3-DIPHENYL-1,1,3,3-TETRAMETHYLDISILAZANE
CAS:<p>Phenyl-Containing Blocking Agent<br>Used as a protecting group for reactive hydrogens in alcohols, amines, thiols, and carboxylic acids. Organosilanes are hydrogen-like, can be introduced in high yield, and can be removed under selective conditions. They are stable over a wide range of reaction conditions and can be removed in the presence of other functional groups, including other protecting groups. The tolerance of silylated alcohols to chemical transformations summary is presented in Table 1 of the Silicon-Based Blocking Agents brochure.<br>Aromatic Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>Diphenyltetramethyldisilazane; N-(Dimethylphenylsilyl)-1,1-dimethyl-1-phenyl silane amine; N-(Dimethylphenylsilyl)-1,1-dimethyl-1-phenylsilylamine<br>Similar to SIP6728.0Emits ammonia upon reactionUsed for silylation of capillary columnsSummary of selective deprotection conditions is provided in Table 7 through Table 20 of the Silicon-Based Blocking Agents brochure<br></p>Fórmula:C16H23NSi2Pureza:97%Forma y color:LiquidPeso molecular:285.54Ref: 3H-SID4586.0
Producto descatalogadoDI-t-BUTOXYDIACETOXYSILANE, 95%
CAS:Fórmula:C12H24O6SiPureza:95%Forma y color:LiquidPeso molecular:292.41,3-BIS(3-METHACRYLOXYPROPYL)TETRAMETHYLDISILOXANE
CAS:Fórmula:C18H34O5Si2Pureza:92%Forma y color:Straw LiquidPeso molecular:386.64SIVATE A610: ACTIVATED AMINE FUNCTIONAL SILANE
CAS:<p>SIVATE A610 (Activated AMEO)<br>Activated silane blend of aminopropyltriethoxysilane (SIA0610.0) and (1-(3-triethoxysilyl)propyl)-2,2-diethoxy-1-aza-silacyclopentane (SIT8187.2)Reacts at high speed (seconds compared to hours)Does not require moisture or hydrolysis to initiate surface reactivityReacts with a greater variety of substratesPrimer for high speed UV cure systems (e.g. acrylated urethanes)<br>Activated Amine Functional Trialkoxy Silane<br>Silane coupling agents have the ability to form a durable bond between organic and inorganic materials to generate desired heterogeneous environments or to incorporate the bulk properties of different phases into a uniform composite structure. The general formula has two classes of functionality. The hydrolyzable group forms stable condensation products with siliceous surfaces and other oxides such as those of aluminum, zirconium, tin, titanium, and nickel. The organofunctional group alters the wetting or adhesion characteristics of the substrate, utilizes the substrate to catalyze chemical transformations at the heterogeneous interface, orders the interfacial region, or modifies its partition characteristics, and significantly effects the covalent bond between organic and inorganic materials.<br></p>Fórmula:C9H23NO3SiForma y color:Colourless To Straw LiquidPeso molecular:221.37Ref: 3H-SIA0610.A1
Producto descatalogadoPENTAVINYLPENTAMETHYLCYCLOPENTASILOXANE, 92%
CAS:Fórmula:C15H30O5Si5Pureza:92%Forma y color:LiquidPeso molecular:430.82TRIETHOXYSILYL MODIFIED POLY-1,2-BUTADIENE, 50% in volatile silicone
CAS:<p>Triethoxysilyl modified poly-1,2-butadiene; vinyltriethoxysilane-1,2-butadiene copolymer; triethoxysilyl modified poly(1,2-butadiene)<br>Multi-functional polymeric trialkoxy silane50% in volatile silicone (decamethylcyclopentasiloxane)Hydrophobic modified polybutadieneViscosity: 600-1200 cStPrimer coating for silicone rubbers<br></p>Forma y color:Pale Yellow Amber LiquidPeso molecular:3500-4500OCTAPHENYLCYCLOTETRASILOXANE, 95%
CAS:Fórmula:C48H40O4Si4Forma y color:White SolidPeso molecular:793.18Ref: 3H-SIO6705.0
Producto descatalogado[PERFLUORO(POLYPROPYLENEOXY)]METHOXYPROPYLTRIMETHOXYSILANE, 20% in fluorinated hydrocarbon
CAS:<p>Fluoroalkyl Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>[Perfluoro(polypropyleneoxy)]methoxypropyltrimethoxysilane; (1H,1H,2H,2H-Perfluorodecyl)trimethoxysilane; Heptadecafluorodecyltrimethoxysilane<br>Contact angle, water: 112 ° 20% in fluorinated hydrocarbonTrialkoxy silane<br></p>Fórmula:CF3CF2CF2O(CF2CF2CF2O)nCH2OCH2CH2CH2Si(OCH3)3Forma y color:Colorless To Light Yellow LiquidPeso molecular:4000-8000n-DECYLTRIETHOXYSILANE
CAS:<p>Alkyl Silane - Conventional Surface Bonding<br>Aliphatic, fluorinated aliphatic or substituted aromatic hydrocarbon substituents are the hydrophobic entities which enable silanes to induce surface hydrophobicity. The organic substitution of the silane must be non-polar. The hydrophobic effect of the organic substitution can be related to the free energy of transfer of hydrocarbon molecules from an aqueous phase to a homogeneous hydrocarbon phase. A successful hydrophobic coating must eliminate or mitigate hydrogen bonding and shield polar surfaces from interaction with water by creating a non-polar interphase. Although silane and silicone derived coatings are in general the most hydrophobic, they maintain a high degree of permeability to water vapor. This allows coatings to breathe and reduce deterioration at the coating interface associated with entrapped water. Since ions are not transported through non-polar silane and silicone coatings, they offer protection to composite structures ranging from pigmented coatings to rebar reinforced concrete. A selection guide for hydrophobic silanes can be found on pages 22-31 of the Hydrophobicity, Hydrophilicity and Silane Surface Modification brochure.<br>n-Decyltriethoxysilane; Triethoxysilyldecane<br>Trialkoxy silane<br></p>Fórmula:C16H36O3SiPureza:97%Forma y color:Straw LiquidPeso molecular:304.54Ref: 3H-SID2665.0
Producto descatalogadoMETHOXY(TRIETHYLENEOXY)UNDECYLTRIMETHOXYSILANE
CAS:<p>Tipped PEG Silane (438.68 g/mol)<br>PEG3C11 Silane3,3-Dimethoxy-2,15,18,24-pentaoxa-3-silapentacosanePEO, Trimethoxysilane termination utilized for hydrophilic surface modificationPEGylation reagentHydrogen bonding hydrophilic silane<br></p>Fórmula:C21H46O7SiPureza:97%Forma y color:Straw LiquidPeso molecular:438.68




