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Silanos

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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  • n-OCTYLDIMETHYLCHLOROSILANE

    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-Octyldimethylchlorosilane; Dimethyloctylchlorosilane; Chlorodimethyloctylsilane<br></p>
    Fórmula:C10H23ClSi
    Pureza:97%
    Forma y color:Pale Yellow Liquid
    Peso molecular:206.83

    Ref: 3H-SIO6711.0

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    10kg
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    750g
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    150kg
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  • 1,2-BIS(CHLORODIMETHYLSILYL)ETHANE

    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>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>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>Bis(dimethylchlorosilyl)ethane; Tetramethyldichlorodisilethylene; Ethylenebis[chlorodimethylsilane]; STABASE-Cl<br>Protection for 1° amines, including amino acid estersSummary of selective deprotection conditions is provided in Table 7 through Table 20 of the Silicon-Based Blocking Agents brochure<br></p>
    Fórmula:C6H16Cl2Si2
    Pureza:97%
    Forma y color:Off-White Solid
    Peso molecular:215.27

    Ref: 3H-SIB1042.0

    2kg
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    100g
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    18kg
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  • METHYLTRIACETOXYSILANE, 95%

    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>Methyltriacetoxysilane; Methylsilane Triacetate; Triacetoxymethylsilane; MTAC<br>Vapor pressure, 94 °C: 9 mmMost common cross-linker for condensation cure silicone RTVsFor liquid version see blend, SIM6519.2<br></p>
    Fórmula:C7H12O6Si
    Pureza:95%
    Forma y color:Off-White Solid
    Peso molecular:220.25

    Ref: 3H-SIM6519.0

    2kg
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    18kg
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    220kg
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  • 3-(m-AMINOPHENOXY)PROPYLTRIMETHOXYSILANE, tech

    CAS:
    <p>Monoamino 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-(m-Aminophenoxy)propyltrimethoxysilane; m-[3-(Trimethoxysilyl)propoxy]aniline; 4-[3-(Trimethoxysilyl)propoxy]-benzenamine<br>Primary amine coupling agent for UV cure and epoxy systemsUsed in microparticle surface modificationAmber liquidHigh temperature coupling agent<br></p>
    Fórmula:C12H21NO4Si
    Pureza:92%
    Forma y color:Amber Brown Liquid
    Peso molecular:271.39

    Ref: 3H-SIA0598.0

    50g
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  • PHENYLMETHYLCYCLOSILOXANES, 92%

    CAS:
    Fórmula:C21H24O3Si3 - C28H32O4Si4
    Pureza:92%
    Forma y color:Liquid
    Peso molecular:408.7-544.9

    Ref: 3H-SIP6737.5

    2kg
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    100g
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  • n-DECYLDIMETHYLCHLOROSILANE

    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-Decyldimethylchlorosilane; Chlorodimethylsilyldecane; Chlorodecyldimethylsilane<br></p>
    Fórmula:C12H27ClSi
    Pureza:97%
    Forma y color:Straw Liquid
    Peso molecular:234.88

    Ref: 3H-SID2660.0

    100g
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    750g
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  • DIISOPROPYLDICHLOROSILANE

    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>Diisopropyldichlorosilane; Dichlorobis(1-methylethyl)silane; DIPS<br>Forms bis(blocked) or tethered alcoholsUsed as tether in ring-closing-metathesis (RCM) reactionThe bifunctional nature of the reagent allows for the templating of diverse groups in intermolecular reactions and ring formationProtects 3’,5’ hydroxyls of nucleosides, but less effectively than SIT7273.0Forms tethered silyl ethers from diolsSummary of selective deprotection conditions is provided in Table 7 through Table 20 of the Silicon-Based Blocking Agents brochure<br></p>
    Fórmula:C6H14Cl2Si
    Forma y color:Straw Amber Liquid
    Peso molecular:185.17

    Ref: 3H-SID3537.0

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    2kg
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    50g
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    18kg
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  • PHENYLTRIETHOXYSILANE

    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>Phenyltriethoxysilane; Triethoxysilylbenzene; Triethoxy(phenyl)silane<br>Viscosity, 25 °C: 1.7 cStDipole moment: 1.85 debyeSurface tension: 28 mN/mDielectric constant: 4.12Vapor pressure, 75 °C: 1 mmCoefficient of thermal expansion: 0.9 x 10-3Improves photoresist adhesion to silicon nitrideElectron donor component of polyolefin polymerization catalyst complexesEffective treatment for organic-grafted claysPhenylates allyl benzoatesCross-couples with aryl bromides without amine or phosphineligandsPhenylates allyl acetatesβ-phenylates enones under aqueous base conditionsExtensive 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:C12H20O3Si
    Pureza:97%
    Forma y color:Straw Liquid
    Peso molecular:240.37

    Ref: 3H-SIP6821.0

    2kg
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    100g
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    17kg
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    200kg
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  • N-(TRIETHOXYSILYLPROPYL)-O-POLYETHYLENE OXIDE URETHANE, 95%

    CAS:
    <p>N-(triethoxysilylpropyl)-O-polyethylene oxide urethane; O-polyethylene oxide-N-(triethoxysilylpropyl)-urethane<br>Hydroxy functional trialkoxy silaneContains some bis(urethane) analogViscosity: 75-125 cStHydrophilic surface modifierForms PEGylated glass surfaces suitable for capillary electrophoresis<br></p>
    Fórmula:C10H22NO4SiO(CH2CH2O)4-6H
    Pureza:95%
    Forma y color:Straw Liquid
    Peso molecular:400-500

    Ref: 3H-SIT8192.0

    100g
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  • 1,3,5-TRIVINYL-1,3,5-TRIMETHYLCYCLOTRISILOXANE

    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>1,3,5-Trivinyl-1,3,5-trimethylcyclotrisiloxane; D’3; Trimethyltrivinylcyclotrisiloxane; Trivinyltrimethylcyclotrisiloxane; 2,4,6-Trimethyl-2,4,6-trivinylcyclotrisiloxane<br>Reagent formation of styrenes and dienes.Undergoes “living” anion ring-opening polymerizationReagent for vinylations via cross-coupling protocolsExtensive 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:C9H18O3Si3
    Pureza:97%
    Forma y color:Liquid
    Peso molecular:258.5

    Ref: 3H-SIT8737.0

    2kg
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    100g
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  • Ref: 3H-SIM6519.2

    1kg
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    18kg
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  • ACETOXYTRIMETHYLSILANE

    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>Acetoxytrimethylsilane; O-Trimethylsilyl acetate<br>Vapor pressure, 30 °: 35 mm<br></p>
    Fórmula:C5H12O2Si
    Pureza:97%
    Forma y color:Liquid
    Peso molecular:132.23

    Ref: 3H-SIA0110.0

    15kg
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  • VINYLTRIMETHOXYSILANE

    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>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>Vinyltrimethoxysilane; Ethenyltrimethoxysilane; Trimethoxyvinylsilane; Trimethoxysilylethylene, VTMS<br>Viscosity: 0.6 cStCopolymerization parameters- e,Q: -0.38, 0.031Specific wetting surface area: 528 m2/gVapor pressure, 20 °C: 9 mmEmployed in two-stage and one-stage graft polymerization/crosslinking for polyethylene (PE)Copolymerizes with ethylene to form moisture crosslinkable polymersConverts arylselenyl bromides to arylvinylselenidesReacts with anhydrides to transfer both vinyl and methoxy and thus form the mixed diesterCross-couples with α-bromo esters to give α-vinyl esters in high eeUsed in microparticle surface modificationFor vinylationsAlkenyltrialkoxysilanes react w/ aryl bromides and iodides to form styrenes under fluoride- and ligand-free and aqeous conditionsReacts in presence of fluorideExtensive 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:C5H12O3Si
    Pureza:97%
    Forma y color:Liquid
    Peso molecular:148.23

    Ref: 3H-SIV9220.0

    25g
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    2kg
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    16kg
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    180kg
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  • (N,N-DIMETHYLAMINO)DIMETHYLSILANE, 95%

    CAS:
    Fórmula:C4H13NSi
    Pureza:95%
    Forma y color:Straw Liquid
    Peso molecular:103.24

    Ref: 3H-SID3546.6

    2kg
    A consultar
  • DI-t-BUTYLSILYLBIS(TRIFLUOROMETHANESULFONATE), 95%

    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>Di-tert-butylsilylbis(trifluoromethanesulfonate); Di-t-butylsilylbis(triflate); DTBS<br>More reactive than SID3205.0Converts 1,3-diols to cyclic protected 1,3-diolsReacts with 1,3-diols in preference to 1,2-diolsSummary of selective deprotection conditions is provided in Table 7 through Table 20 of the Silicon-Based Blocking Agents brochure<br></p>
    Fórmula:C10H18F6O6S2Si
    Pureza:95%
    Forma y color:Straw Liquid
    Peso molecular:440.46

    Ref: 3H-SID3345.0

    20kg
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    2.5kg
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  • TETRAKIS(DIMETHYLSILOXY)SILANE

    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>Tetrakis(dimethylsiloxy)silane; M'4Q; 3,3-Bis(dimethylsiloxy)-1,1,5,5-tetramethyltrisiloxane<br>Viscosity: 1.1 cStCrosslinker for vinyl functional siliconesHigh molecular weight silane reducing agentExtensive 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:C8H28O4Si5
    Pureza:97%
    Forma y color:Liquid
    Peso molecular:328.73

    Ref: 3H-SIT7278.0

    100g
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    14kg
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    2.5kg
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  • n-BUTYLTRICHLOROSILANE

    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-Butyltrichlorosilane; Trichlorosilylbutane<br>Vapor pressure, 31 °C: 10 mm<br></p>
    Fórmula:C4H9Cl3Si
    Pureza:97%
    Forma y color:Liquid
    Peso molecular:191.56

    Ref: 3H-SIB1982.0

    2kg
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    100g
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    20kg
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    850g
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  • N-[3-(TRIMETHOXYSILYL)PROPYL]HEXADECANAMIDE

    CAS:
    Fórmula:C22H47NO4Si
    Forma y color:White To Pale Yellow Solid
    Peso molecular:417.7

    Ref: 3H-SIT8404.0

    25g
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  • CHLOROMETHYLDIMETHYLCHLOROSILANE

    CAS:
    <p>Specialty 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>Chloromethyldimethylchlorosilane; (Chlorodimethylsilyl)chloromethane; Chloro(chloromethyl)dimethylsilane; CMDMCS<br>Can form cyclic products with appropriate 1,2-difunctional substratesUsed in analytical applications for greater ECD detectabilitySummary of selective deprotection conditions is provided in Table 7 through Table 20 of the Silicon-Based Blocking Agents brochure<br></p>
    Fórmula:C3H8Cl2Si
    Pureza:97%
    Forma y color:Straw Liquid
    Peso molecular:143.09

    Ref: 3H-SIC2285.0

    2kg
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    15kg
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    18kg
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    750g
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    180kg
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  • TRIS(DIMETHYLAMINO)ETHYLSILANE

    CAS:
    Fórmula:C8H23N3Si
    Pureza:97%
    Forma y color:Straw Liquid
    Peso molecular:189.38

    Ref: 3H-SIT8711.6

    2kg
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    50g
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  • PHENYLTRIS(TRIMETHYLSILOXY)SILANE

    CAS:
    Fórmula:C15H32O3Si4
    Pureza:97%
    Forma y color:Straw Liquid
    Peso molecular:372.76

    Ref: 3H-SIP6827.0

    100g
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  • N,N-DIOCTYL-N'-TRIETHOXYSILYLPROPYLUREA

    CAS:
    Fórmula:C26H56N2O4Si
    Forma y color:Straw Liquid
    Peso molecular:488.83

    Ref: 3H-SID4465.0

    25g
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  • p-TOLYLDIMETHYLCHLOROSILANE

    CAS:
    Fórmula:C9H13ClSi
    Pureza:97%
    Forma y color:Straw Liquid
    Peso molecular:184.74

    Ref: 3H-SIT8030.0

    2kg
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  • (3-TRIMETHOXYSILYLPROPYL)DIETHYLENETRIAMINE, tech

    CAS:
    <p>(3-Trimethoxysilylpropyl)diethylenetriamine; N-[N'-(2-aminoethyl)aminoethyl]-3-aminopropytrimethoxysilane<br>Triamino functional trialkoxy silaneHardener, coupling agent for epoxiesγc of treated surfaces: 37.5 mN/mPrimary amine and two internal secondary amine coupling agent<br></p>
    Fórmula:C10H27N3O3Si
    Pureza:95%
    Forma y color:Straw Liquid
    Peso molecular:265.43

    Ref: 3H-SIT8398.0

    2kg
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    100g
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    18kg
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    200kg
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  • (3-TRIETHOXYSILYL)PROPYLSUCCINIC ANHYDRIDE, 95%

    CAS:
    <p>Anhydride 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-Triethoxysilylpropylsuccinic anhydride<br>Viscosity: 20 cStCoupling agent for dibasic surfacesAcetic acid-catalyzed hydrolysis yields succinct acid derivativesHardener, coupling agent for for epoxy resins<br></p>
    Fórmula:C13H24O6Si
    Pureza:95%
    Forma y color:Straw Liquid
    Peso molecular:304.41

    Ref: 3H-SIT8192.6

    25g
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    2kg
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    100g
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    18kg
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    200kg
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  • 3-{[DIMETHYL(3-TRIMETHOXYSILYL)PROPYL]AMMONIO}PROPANE-1-SULFONATE, tech 95

    CAS:
    Fórmula:C11H27NO6SSi
    Pureza:95%
    Forma y color:White Solid
    Peso molecular:329.5

    Ref: 3H-SID4241.0

    10g
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    100g
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  • VINYLTRIETHOXYSILANE

    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>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>Vinyltriethoxysilane; Triethoxyvinylsilane; TEVS; VTES; Ethenyltriethoxysilane; Triethoxysilylethylene; Triethoxy(vinyl)silane<br>ΔHvap: 6.8 kcal/molΔHform: -463.5 kcal/molDipole moment: 1.69 debyeSpecific wetting surface area: 412 m2/gCopolymerization parameters- e,Q: -0.42, 0.028γc of treated surfaces: 25 mN/mVapor pressure, 20 °C: 5 mmSpecific heat: 0.25 cal/g/°Relative hydrolysis rate versus SIV9220.0, vinyltrimethoxysilane; 0.05Forms copolymers with ethylene for moisture induced coupling of polyethyleneCouples fillers or fiberglass to resinsSee VEE-005 for polymeric versionReacts with enamines to give (E)-β:-silylenamines, which cross-couple with aryl iodides to give β-aryl enaminesEmployed as a coupling agent, adhesion promoter, and crosslinking agentUsed in microparticle surface modification for fillersCompatible with sulfur and peroxide cured rubber, polyester, polyolefin, styrene, and acrylic based materialsFor vinylationsAvailable as an oligomeric hydrolysate, SIV9112.2Extensive 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:C8H18O3Si
    Pureza:97%
    Forma y color:Liquid
    Peso molecular:190.31

    Ref: 3H-SIV9112.0

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    16kg
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    180kg
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  • N,N-BIS(2-HYDROXYETHYL)-3-AMINOPROPYLTRIETHOXYSILANE, 62% in ethanol

    CAS:
    <p>N,N-Bis(2-hydroxyethyl)-3-aminopropyltriethoxysilane; N-triethoxysilylpropyl-N,N-bis(2-hydroxyethyl)amine; 2,2'-[[3- (triethoxysilyl)propyl]imino]bisethanol<br>Tertiary amino functional trialkoxy silaneTerminal dihydroxy-functionalityUrethane polymer coupling agentContains 2-3% hydroxyethylaminopropyltriethoxysilaneSpecific wetting surface: 252 m2/gEmployed in surface modification for preparation of oligonucleotide arrays 62% in ethanol<br></p>
    Fórmula:C13H31NO5Si
    Forma y color:Straw Liquid
    Peso molecular:309.48

    Ref: 3H-SIB1140.0

    25g
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    2kg
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    100g
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    16kg
    A consultar
  • OCTADECYLDIISOBUTYLCHLOROSILANE

    CAS:
    Fórmula:C26H55ClSi
    Pureza:95%
    Forma y color:Straw Liquid
    Peso molecular:431.27

    Ref: 3H-SIO6608.0

    500g
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  • PENTAMETHYLDISILOXANE

    CAS:
    Fórmula:C5H16OSi2
    Pureza:97%
    Forma y color:Liquid
    Peso molecular:148.35

    Ref: 3H-SIP6719.0

    13kg
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    1.5kg
    A consultar
  • CHLOROMETHYLTRIETHOXYSILANE

    CAS:
    <p>Halogen 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>Chloromethyltriethoxysilane; triethoxy(chloromethyl)silane; (chloromethyl)triethoxysilane; (triethoxysilyl)methylchloride<br>Grignard reacts with chlorosilanes or intermolecularly to form carbosilanesUsed in microparticle surface modification<br></p>
    Fórmula:C7H17ClO3Si
    Pureza:97%
    Forma y color:Liquid
    Peso molecular:212.75

    Ref: 3H-SIC2298.4

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    2kg
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    18kg
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    200kg
    A consultar
  • TETRA-s-BUTOXYSILANE

    CAS:
    Fórmula:C16H36O4Si
    Pureza:95%
    Forma y color:Light Amber Liquid
    Peso molecular:320.54

    Ref: 3H-SIT7064.0

    25g
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    2kg
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  • 1,3,5,7-TETRAMETHYLCYCLOTETRASILOXANE

    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-Tetramethylcyclotetrasiloxane; TMCTS; Methyl hydrogen cyclic tetramer<br>ΔHcomb: 5,308 kJ/molΔHvap: 177.9 kJ/molVapor pressure, 20 °C: 7.0 mmCritical temperature: 278 °CHigh molecular weight silane reducing agentIn presence of oxygen plasma generates SiO2 films for microelectronicsCyclic monomer- undergoes hydrosilylation reactionsForms hybrid inorganic-organic polymers with dienes suitable for circuit board resinsForms gate dielectrics by CVDExtensive 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:C4H16O4Si4
    Pureza:97%
    Forma y color:Colourless Liquid
    Peso molecular:240.51

    Ref: 3H-SIT7530.0

    3kg
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    100g
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    18kg
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  • N,N'-BIS[(3-TRIMETHOXYSILYL)PROPYL]ETHYLENEDIAMINE, 95%

    CAS:
    <p>N,N'-bis[(3-trimethoxysilyl)propyl]ethylenediamine; bis(trimethoxysilylpropyl)ethylenediamine; 1,2-bis[(3-trimethoxysilyl)propylamino]ethane<br>Diamine functional dipodal silaneContains N,N-isomerCoupling agent for polyamides with enhanced hydrolytic stabilityForms thin film environments for metal ions<br></p>
    Fórmula:C14H36N2O6Si2
    Pureza:95%
    Forma y color:Straw Liquid
    Peso molecular:384.62

    Ref: 3H-SIB1834.1

    50g
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  • 7-OCTENYLTRIMETHOXYSILANE, 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>7-Octenyltrimethoxysilane; 8-(Trimethoxysilyl)octene<br>Contains 10-15% internal olefin isomersCoupling agent for "in situ" polymerization of acrylamide for capillary electrophoresisEmployed in stretched DNA fibers for fluorescent in situ hybridization (FISH)mappingSurface treatment for FISH and replication mapping on DNA fibersUsed in microparticle surface modification<br></p>
    Fórmula:C11H24O3Si
    Pureza:97%
    Forma y color:Straw Liquid
    Peso molecular:232.39

    Ref: 3H-SIO6709.0

    25g
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    2kg
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    16kg
    A consultar
  • 1,4-BIS(DIMETHYLSILYL)BENZENE

    CAS:
    Fórmula:C10H18Si2
    Pureza:97%
    Forma y color:Liquid
    Peso molecular:194.42

    Ref: 3H-SIB1086.0

    50g
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  • 1-n-OCTADECYL-1,1,3,3,3-PENTACHLORO-1,3-DISILAPROPANE, 95%

    CAS:
    Fórmula:C19H39Cl5Si2
    Pureza:95%
    Forma y color:Liquid
    Peso molecular:500.95

    Ref: 3H-SIO6632.4

    10g
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  • METHYLDIETHOXYSILANE

    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>Methyldiethoxysilane; Diethoxymethylsilane<br>ΔHcomb: 3,713 kJ/molWill form high-boiling polymeric by-products with aqueous work-upExtensive 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:C5H14O2Si
    Pureza:97%
    Forma y color:Liquid
    Peso molecular:134.25

    Ref: 3H-SIM6506.0

    25g
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    2kg
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    100g
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    13kg
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  • N-(6-AMINOHEXYL)AMINOPROPYLTRIMETHOXYSILANE, 95%

    CAS:
    <p>N-(6-Aminohexyl)aminopropyltrimethoxysilane, N-[6-trimethoxysilyl)propyl]hexamethylethylenediamine, N-[3-(trimethoxysilyl)propyl]-1,6-hexanediamine<br>Diamino functional trialkoxy silanePrimary amine and an internal secondary amine coupling agent for UV cure and epoxy systemsUsed in microparticle surface modificationEmployed in immobilization of DNAEmployed for immobilization of PCR primers on beadsLong chain analog of SIA0590.5<br></p>
    Fórmula:C12H30N2O3Si
    Pureza:95%
    Forma y color:Straw Liquid
    Peso molecular:278.47

    Ref: 3H-SIA0594.0

    2kg
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  • METHOXYTRIETHYLENEOXYPROPYLTRIMETHOXYSILANE

    CAS:
    <p>Tipped PEG Silane (326.46 g/mol)<br>PEO, Trimethoxysilane termination utilized for hydrophilic surface modificationPEGylation reagentHydrogen bonding hydrophilic silaneForms polymeric proton-conducting electrolytes<br></p>
    Fórmula:C13H30O7Si
    Pureza:92%
    Forma y color:Straw Liquid
    Peso molecular:326.46

    Ref: 3H-SIM6493.4

    10g
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    100g
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  • 2-(4-CHLOROSULFONYLPHENYL)ETHYLTRICHLOROSILANE, 50% in methylene chloride

    CAS:
    Fórmula:C8H8Cl4O2SSi
    Forma y color:Straw Amber Liquid
    Peso molecular:338.11

    Ref: 3H-SIC2415.0

    2kg
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    100g
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    750g
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  • TRIMETHOXYSILYLPROPYL MODIFIED (POLYETHYLENIMINE), 50% in isopropanol

    CAS:
    <p>Trimethoxysilylpropyl modified (polyethylenimine)<br>Polyamino hydrophilic trialkoxysilaneViscosity: 125-175 cStEmployed as a coupling agent for polyamidesUsed in combination with glutaraldehyde immobilizes enzymes50% in isopropanol~20% of nitrogens substituted<br></p>
    Forma y color:Straw Yellow Amber Liquid
    Peso molecular:1500-1800

    Ref: 3H-SSP-060

    2kg
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    16kg
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    180kg
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  • VINYLMETHYLDIMETHOXYSILANE

    CAS:
    <p>Olefin Functional Dialkoxy 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>Vinylmethyldimethoxysilane; Dimethoxymethylvinylsilane; (Dimethoxymethyl)silylethylene; Ethenylmethyldimethoxysilane<br>Viscosity: 0.7 cStVapor pressure, 20 °C: 38 mmAdditive to moisture-cure silane modified polyurethanes as a water scavenger to prevent premature cureUsed in microparticle surface modification<br></p>
    Fórmula:C5H12O2Si
    Pureza:97%
    Forma y color:Colourless Liquid
    Peso molecular:132.23

    Ref: 3H-SIV9086.0

    16kg
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    170kg
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  • TRIMETHYLIODOSILANE

    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>Trimethyliodosilane; Iodotrimethylsilane, Trimethylsilyl iodide; TMIS<br>Extremely reactive silylating agentUsed with HMDS for hindered alcoholsForms enol silyl ethers with ketones and SIT8620.0Nafion 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:C3H9ISi
    Pureza:97%
    Forma y color:Straw To Pale Pink-Purple Liquid
    Peso molecular:200.1

    Ref: 3H-SIT8564.0

    25kg
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    2.5kg
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  • N-TRIMETHOXYSILYLPROPYL-N,N,N-TRIMETHYLAMMONIUM CHLORIDE, 50% in methanol

    CAS:
    <p>N-Trimethoxysilylpropyl-N,N,N-trimethylammonium chloride; N,N,N-trimethyl-3-(trimethoxysilyl)-1-propanammonium chloride; trimethyl-3-(trimethoxysilyl)propylammonium chloride<br>Quaternary amino functional trialkoxy silanePrevents contact electrificationUsed to treat glass substrates employed in electroblottingAnti-static agentEmployed for bonded chromatographic phases50% in methanol<br></p>
    Fórmula:C9H24ClNO3Si
    Forma y color:Straw Liquid
    Peso molecular:257.83

    Ref: 3H-SIT8415.0

    25g
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    2kg
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    15kg
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    180kg
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  • (TRIDECAFLUORO-1,1,2,2-TETRAHYDROOCTYL)TRIETHOXYSILANE

    CAS:
    <p>(Tridecafluoro-1,1,2,2-tetrahydrooctyl)triethoxysilane; 1H,1H,2H,2H-Perfluorooctyltriethoxysilane; POTS<br></p>
    Fórmula:C14H19F13O3Si
    Pureza:97%
    Forma y color:Straw Liquid
    Peso molecular:510.36

    Ref: 3H-SIT8175.0

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    3kg
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    50g
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    250g
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    25kg
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  • n-OCTADECYLDIMETHYLMETHOXYSILANE

    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-Octadecyldimethylmethoxysilane; Methoxydimethyloctadecylsilane; Dimethylmethoxysilyloctadecane<br>Contains 5-10% C18 isomersEmployed in SAM resistMonoalkoxy silane<br></p>
    Fórmula:C21H46OSi
    Pureza:97%
    Forma y color:Liquid
    Peso molecular:342.68

    Ref: 3H-SIO6618.0

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  • n-OCTYLDIISOPROPYL(DIMETHYLAMINO)SILANE

    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-Octyldiisopropyl(dimethylamino)silane; N,N-Dimethyl-1,1-bis(1-methylethyl)-1-octyl silanamine<br>Reagent for HPLC bonded phases without acidic byproducts<br></p>
    Fórmula:C16H37NSi
    Pureza:97%
    Forma y color:Straw Liquid
    Peso molecular:271.57

    Ref: 3H-SIO6710.7

    25g
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  • HEXAMETHYLDISILOXANE, 99.9%

    CAS:
    Fórmula:C6H18OSi2
    Pureza:99.90%
    Forma y color:Liquid
    Peso molecular:162.38

    Ref: 3H-SIH6115.1

    14kg
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    1.5kg
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    150kg
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  • (3-ACRYLOXYPROPYL)TRIMETHOXYSILANE, 96%

    CAS:
    <p>Acrylate 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-Acryloxypropyltrimethoxysilane, 3-(trimethoxysilyl)propyl acrylate<br>Coupling agent for UV cure and epoxy systemsEmployed in optical fiber coatingsUsed in microparticle surface modification Comonomer for free-radical polymerizaitonAnalog of methacryloxypropyltrimethoxysilane (SIM6487.4)Used in combination with dipodal silane, Bis(3-trimethoxysilylproply)amine (SIB1833.0), to increase strength and hydrolytic stability of dental compositesInhibited with BHTBase silane in SIVATE™ A200<br></p>
    Fórmula:C9H18O5Si
    Pureza:96%
    Forma y color:Straw Liquid
    Peso molecular:234.32

    Ref: 3H-SIA0200.0

    25g
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    2kg
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    16kg
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    180kg
    A consultar