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Silani

Silani

I silani sono composti a base di silicio con uno o più gruppi organici legati a un atomo di silicio. Servono come building blocksi nella sintesi organica e inorganica, specialmente nella modifica delle superfici, nella promozione dell'adesione e nella produzione di rivestimenti e sigillanti. I silani sono ampiamente utilizzati nell'industria dei semiconduttori, nel trattamento del vetro e come agenti di reticolazione nella chimica dei polimeri. Presso CymitQuimica offriamo una vasta gamma di silani progettati per le tue applicazioni di ricerca e industriali.

Sottocategorie di "Silani"

Trovati 1234 prodotti di "Silani"

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  • METHACRYLOXYPROPYLTRIETHOXYSILANE

    CAS:

    Methacrylate Functional Trialkoxy Silane
    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.
    Methacryloxypropyltriethoxysilane
    Coupling agent for radical cure polymer systems and UV cure systemsUsed in microparticle surface modificationComonomer for free-radical polymerizaitonInhibited with MEHQ

    Formula:C13H26O5Si
    Purezza:97%
    Colore e forma:Straw Liquid
    Peso molecolare:290.43

    Ref: 3H-SIM6487.3

    2kg
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    16kg
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  • 3-CYANOPROPYLDIISOPROPYL(DIMETHYLAMINO)SILANE

    CAS:
    Formula:C12H26N2Si
    Purezza:97%
    Colore e forma:Straw Liquid
    Peso molecolare:226.44

    Ref: 3H-SIC2451.0

    100g
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  • METHYLTRICHLOROSILANE, 98%

    CAS:

    Alkyl Silane - Conventional Surface Bonding
    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.
    Methyltrichlorosilane; Trichloromethylsilane; Trichlorosilylmethane
    Viscosity: 0.46 cStΔHvap: 31.0 kJ/molSurface tension: 20.3 mN/mIonization potential: 11.36 eVSpecific heat: 0.92 J/g/°Vapor pressure, 13.5 °C: 100 mmCritical temperature: 243 °CCritical pressure: 39 atmCoefficient of thermal expansion: 1.3 x 10-3Fundamental builing-block for silicone resinsForms silicon carbide by pyrolysisIn a synergistic fashion with boron trifluoride etherate catalyzes the crossed imino aldehyde pinacol couplingHigher purity grade available, SIM6520.1

    Formula:CH3Cl3Si
    Purezza:98%
    Colore e forma:Straw Liquid
    Peso molecolare:149.48

    Ref: 3H-SIM6520.0

    dr
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    4kg
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    cyl
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    20kg
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    500g
    202,00€
  • n-PROPYLDIMETHYLCHLOROSILANE

    CAS:

    Alkyl Silane - Conventional Surface Bonding
    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.
    n-Propyldimethylchlorosilane; Chlorodimethyl-n-propylsilane

    Formula:C5H13ClSi
    Purezza:97%
    Colore e forma:Straw Liquid
    Peso molecolare:136.7

    Ref: 3H-SIP6910.0

    100g
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  • PHENYLSILANE

    CAS:

    Mono-substituted Silane Reducing Agent
    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.
    Trihydridosilane
    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.
    Phenylsilane; Silylbenzene
    ΔHvap: 34.8 kJ/molEmployed in the reduction of esters to ethersReduces α,β-unsaturated ketones to saturated ketones in the presence of tri-n-butyltin hydrideReduces tin amides to tin hydridesUsed in the tin-catalyzed reduction of nitroalkanes to alkanesReduces α-halo ketones in presence of Mo(0)Adds to norbornene with high eeReducing reagent in radical reductionsYields ISiH3 on treatments with HI in presence of AlI3Extensive review of silicon based reducing agents: Larson, G.; Fry, J. L. "Ionic and Organometallic-Catalyzed Organosilane Reductions", Wipf, P., Ed.; Wiley, 2007

    Formula:C6H8Si
    Purezza:97%
    Colore e forma:Liquid
    Peso molecolare:108.21

    Ref: 3H-SIP6750.0

    15kg
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  • BIS(DIMETHYLAMINO)DIMETHYLSILANE

    CAS:

    Bridging Silicon-Based Blocking Agent
    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.
    ALD Material
    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.
    Alkyl Silane - Conventional Surface Bonding
    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.
    Bis(Dimethylamino)dimethylsilane; Dimethylbis(dimethylamino)silane; Hexamethylsilanediamine; DMS
    More reactive than SIB4120.0Couples silanol terminated siloxanesReacted with diols, diamines, and treatment for glassSummary of selective deprotection conditions is provided in Table 7 through Table 20 of the Silicon-Based Blocking Agents brochure

    Formula:C6H18N2Si
    Purezza:97%
    Colore e forma:Straw Liquid
    Peso molecolare:146.31

    Ref: 3H-SIB1072.0

    2kg
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    100g
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    14kg
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    160kg
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  • VINYLMETHYLDICHLOROSILANE

    CAS:

    Alkenylsilane Cross-Coupling Agent
    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.
    Vinylmethyldichlorosilane; Dichlorovinylmethylsilane; Methylvinyldichlorosilane; Dichloroethenylmethylsilane
    Viscosity: 0.70 cStΔHvap: 33.9 kJ/molCritical temperature: 272 °CCoefficient of thermal expansion: 1.4 x 10-3Reacts to vinylate aryl halides under NaOH-moderated conditionsUsed as a tether in synthesis of C-glycosidesExtensive 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

    Formula:C3H6Cl2Si
    Purezza:97%
    Colore e forma:Straw Amber Liquid
    Peso molecolare:141.07

    Ref: 3H-SIV9084.0

    25g
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  • TETRAKIS(METHOXYETHOXY)SILANE, tech

    CAS:
    Formula:C12H28O8Si
    Purezza:95%
    Colore e forma:Liquid
    Peso molecolare:328.43

    Ref: 3H-SIT7286.0

    18kg
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    500g
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    2.5kg
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    200kg
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  • TETRACHLOROSILANE, 99.99+%

    CAS:
    Formula:Cl4Sn
    Purezza:99.99%
    Colore e forma:Straw Liquid
    Peso molecolare:169.9

    Ref: 3H-SIT7085.1

    5kg
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  • BIS(CHLOROMETHYL)DIMETHYLSILANE

    CAS:
    Formula:C4H10Cl2Si
    Purezza:97%
    Colore e forma:Straw Liquid
    Peso molecolare:157.11

    Ref: 3H-SIB1051.0

    2kg
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    750g
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  • TETRAMETHYLSILANE, 99+%

    CAS:

    Tetramethylsilane; 4MS; TMS
    NMR gradeViscosity: 0.4 cSt?Hcomb: 3,851 kJ/mol?Hform: -232 kJ/mol?Hvap: 26.8 kJ/mol?Hfus: 6.7 kJ/molPhotoionization threshold: 8.1 eVCe: 1.838 x 10-3Vapor pressure, 20 °C: 589 mmCritical temperature: 185 °CCritical pressure: 33 atmHeat capacity: 195.2 Jmol-1K-1Dielectric constant: 1.92Intermediate for ?-SiC:H thin films by PECVD

    Formula:C4H12Si
    Purezza:99%
    Colore e forma:Straw Liquid
    Peso molecolare:88.22

    Ref: 3H-SIT7555.0

    100g
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    10kg
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    2.5kg
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  • TETRA-n-PROPOXYSILANE

    CAS:
    Formula:C12H28O4Si
    Purezza:97%
    Colore e forma:Liquid
    Peso molecolare:264.44

    Ref: 3H-SIT7777.0

    2kg
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    16kg
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    190kg
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  • ((CHLOROMETHYL)PHENYLETHYL)TRICHLOROSILANE

    CAS:
    Formula:C9H10Cl4Si
    Purezza:97%
    Colore e forma:Straw Liquid
    Peso molecolare:288.08

    Ref: 3H-SIC2295.3

    25g
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  • HEXYLMETHYLDICHLOROSILANE

    CAS:

    Alkyl Silane - Conventional Surface Bonding
    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.
    Hexylmethyldichlorosilane; Dichlorohexylmethylsilane

    Formula:C7H16Cl2Si
    Purezza:97%
    Colore e forma:Straw Liquid
    Peso molecolare:199.19

    Ref: 3H-SIH6165.6

    2kg
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  • n-OCTADECYLTRICHLOROSILANE

    CAS:

    Alkyl Silane - Conventional Surface Bonding
    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.
    n-Octadecyltrichlorosilane; OTS; Trichlorosilyloctadecane; Trichlorooctadecylsilane
    Contains 5-10% C18 isomersProvides lipophilic surface coatingsEmployed in patterning and printing of electroactive molecular filmsImmobilizes physiologically active cell organellesTreated substrates increase electron transport of pentacene films

    Formula:C18H37Cl3Si
    Purezza:97% including isomers
    Colore e forma:Straw Liquid
    Peso molecolare:387.93

    Ref: 3H-SIO6640.0

    25g
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    2kg
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    15kg
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    750g
    Prezzo su richiesta
    180kg
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  • 3-MERCAPTOPROPYLTRIMETHOXYSILANE

    CAS:

    3-Mercaptopropyltrimethoxysilane; 3-(trimethoxysilyl)propanethiol; 3-trimethoxysilyl)propylmercaptan
    Sulfur functional trialkoxy silaneγc of treated surfaces: 41 mN/mViscosity: 2 cStSpecific wetting surface: 348 m2/gCoupling agent for ethylene propylene diene monomer, EPDM, and mechanical rubber applicationsAdhesion promoter for polysulfide adhesivesFor enzyme immobilizationTreatment of mesoporous silica yields highly efficient heavy metal scavengerCouples fluorescent biological tags to semiconductor CdS nanoparticlesModified mesoporous silica supports Pd in coupling reactionsUsed to make thiol-organosilica nanoparticlesForms modified glass and silica surfaces suitable for successive ionic layer adsorption and reaction (SILAR) fabrication of CdS thin films

    Formula:C6H16O3SSi
    Purezza:97%
    Colore e forma:Straw Liquid
    Peso molecolare:196.34

    Ref: 3H-SIM6476.0

    2kg
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    100g
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    18kg
    Prezzo su richiesta
    180kg
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  • HEXAMETHYLCYCLOTRISILOXANE

    CAS:
    Formula:C6H18O3Si3
    Purezza:80%
    Colore e forma:Solid
    Peso molecolare:222.46

    Ref: 3H-SIH6105.0

    3kg
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    10kg
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    500g
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    150kg
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  • PENTAFLUOROPHENYLPROPYLDIMETHYLCHLOROSILANE

    CAS:
    Formula:C11H12ClF5Si
    Purezza:97%
    Colore e forma:Liquid
    Peso molecolare:302.74

    Ref: 3H-SIP6716.2

    5g
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    1kg
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    100g
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  • CYCLOHEXYLTRICHLOROSILANE

    CAS:

    Alkyl Silane - Conventional Surface Bonding
    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.
    Cyclohexyltrichlorosilane; Trichlorosilylcyclohexane; trichloro(cyclohexyl)silane; Trichlorosilylcyclohexane
    Intermediate for melt-processable silsesquioxane-siloxanesEmployed in solid-phase extraction columns

    Formula:C6H11Cl3Si
    Purezza:97%
    Colore e forma:Straw Liquid
    Peso molecolare:217.6

    Ref: 3H-SIC2480.0

    2kg
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  • 3-CYANOPROPYLDIISOPROPYLCHLOROSILANE

    CAS:
    Formula:C10H20ClNSi
    Purezza:97%
    Colore e forma:Straw Liquid
    Peso molecolare:217.82

    Ref: 3H-SIC2450.0

    10g
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    50g
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