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3D-FB162149 - benzyltrichlorosilane

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  • Ethyltrichlorosilane

    CAS:
    Formula:C2H5Cl3Si
    Purity:>98.0%(GC)(T)
    Color and Shape:Colorless to Light yellow clear liquid
    Molecular weight:163.50

    Ref: 3B-E0188

    25g
    34.00€
  • Phenyltrichlorosilane

    CAS:
    Formula:C6H5Cl3Si
    Purity:>98.0%(GC)
    Color and Shape:Colorless to Almost colorless clear liquid
    Molecular weight:211.54

    Ref: 3B-P0240

    25g
    27.00€
    500g
    113.00€
  • Octenyltrichlorosilane

    CAS:
    Octenyltrichlorosilane
    Purity:96%,mixture of isomers
    Molecular weight:245.65g/mol

    Ref: 54-OR1025191

    1ml
    36.00€
    5ml
    137.00€
    25ml
    574.00€
    100ml
    2,047.00€
  • Ethyltrichlorosilane

    CAS:
    Ethyltrichlorosilane
    Purity:>98.0%

    Ref: 54-OR1078248

    25g
    64.00€
  • Decyltrichlorosilane

    CAS:
    Formula:C10H21Cl3Si
    Purity:>97.0%(GC)
    Color and Shape:Colorless to Light yellow clear liquid
    Molecular weight:275.71

    Ref: 3B-D1486

    25ml
    70.00€
  • ETHYLTRICHLOROSILANE

    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.
    Ethyltrichlorosilane; Trichloroethylsilane
    Viscosity: 0.48 cStΔHcomb: -2,696 kJ/molΔHform: -84 kJ/molΔHvap: 37.7 kJ/molΔHfus: 7.0 kJ/molDipole moment: 2.1Vapor pressure, 20 °C: 26 mmVapor pressure, 30.4 °C: 66 mmCritical temperature: 287 °CCoefficient of thermal expansion: 1.5 x 10-3Employed in the cobalt-catalyzed Diels-Alder approach to 1,3-disubstituted and 1,2,3-trisubstituted benzenes

    Formula:C2H5Cl3Si
    Purity:97%
    Color and Shape:Straw Liquid
    Molecular weight:163.51

    Ref: 3H-SIE4901.0

    1kg
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    4kg
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  • PHENYLTRICHLOROSILANE

    CAS:

    Aromatic 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.
    Phenyltrichlorosilane; Trichlorophenylsilane; Trichlorosilylbenzene
    Viscosity: 1.08 cStΔHvap: 47.7 kJ/molDipole moment: 2.41 debyeSurface tension: 27.9 mN/mVapor pressure, 75 °C: 10 mmCritical temperature: 438 °CSpecific heat: 1.00 J/g/°CCoefficient of thermal expansion: 1.2 x 10-3Intermediate for high refractive index resinsImmobilizes pentacene films

    Formula:C6H5Cl3Si
    Purity:97%
    Color and Shape:Liquid
    Molecular weight:211.55

    Ref: 3H-SIP6810.0

    25g
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    2kg
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  • n-Butyltrichlorosilane, 97+%

    CAS:
    This Thermo Scientific Chemicals brand product was originally part of the Alfa Aesar product portfolio. Some documentation and label information may refer to the legacy brand. The original Alfa Aesar product / item code or SKU reference has not changed as a part of the brand transition to Thermo Sci
    Formula:C4H9Cl3Si
    Purity:97+%
    Color and Shape:Clear colorless to pale yellow, Liquid
    Molecular weight:191.55

    Ref: 02-A11256

    5g
    33.00€
    25g
    79.00€
    100g
    233.00€
  • Phenyltrichlorosilane, 97%

    CAS:
    This Thermo Scientific Chemicals brand product was originally part of the Alfa Aesar product portfolio. Some documentation and label information may refer to the legacy brand. The original Alfa Aesar product / item code or SKU reference has not changed as a part of the brand transition to Thermo Sci
    Formula:C6H5Cl3Si
    Purity:97%
    Color and Shape:Clear colorless to pale yellow, Liquid
    Molecular weight:211.54

    Ref: 02-A16713

    100g
    44.00€
    500g
    96.00€
  • Methyltrichlorosilane, 97%

    CAS:
    Methyltrichlorosilane is used in production of methyl silicone resins, its vapor reacts with water on surfaces to give a thin layer of methylpolysiloxane which make it a water-repellent film. A combination of methyltrichlorosilane and sodium iodide can be used to cleave carbon-oxygen bonds such as m
    Formula:CH3Cl3Si
    Purity:97%
    Color and Shape:Clear colorless, Liquid
    Molecular weight:149.47

    Ref: 02-B23107

    100g
    42.00€
    500g
    To inquire
  • n-Decyltrichlorosilane, 97%

    CAS:
    This Thermo Scientific Chemicals brand product was originally part of the Alfa Aesar product portfolio. Some documentation and label information may refer to the legacy brand. The original Alfa Aesar product / item code or SKU reference has not changed as a part of the brand transition to Thermo Sci
    Formula:C10H21Cl3Si
    Purity:97%
    Color and Shape:Clear colorless, Liquid
    Molecular weight:275.71

    Ref: 02-L05912

    10g
    To inquire
    50g
    164.00€
  • 4-(Chloromethyl)phenyltrichlorosilane, 97%

    CAS:
    4-(Chloromethyl)phenyltrichlorosilane is used as a pharmaceutical intermediate. This Thermo Scientific Chemicals brand product was originally part of the Alfa Aesar product portfolio. Some documentation and label information may refer to the legacy brand. The original Alfa Aesar product / item code
    Formula:C7H6Cl4Si
    Purity:97%
    Color and Shape:Clear colorless, Liquid, Liquid
    Molecular weight:260.01

    Ref: 02-L16431

    5g
    51.00€
    25g
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    100g
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  • Ref: 44-AB110986

    25g
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    100g
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  • 2-(Carbomethoxy)ethyltrichlorosilane

    CAS:
    Formula:C4H7Cl3O2Si
    Molecular weight:221.5417

    Ref: IN-DA0022WU

    ne
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  • n-Decyltrichlorosilane

    CAS:
    n-Decyltrichlorosilane
    Purity:95%
    Molecular weight:275.71824g/mol

    Ref: 54-OR1022306

    5g
    63.00€
    25g
    211.00€
    100g
    505.00€
    500g
    2,132.00€
  • n-Hexyltrichlorosilane

    CAS:

    n-Hexyltrichlorosilane

    Molecular weight:219.61192g/mol

    Ref: 54-OR1022308

    25g
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    100g
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  • Tert-Butyltrichlorosilane

    CAS:
    Tert-Butyltrichlorosilane
    Purity:95%
    Molecular weight:191.56g/mol

    Ref: 54-OR1027162

    1g
    42.00€
    5g
    149.00€
    25g
    559.00€
    100g
    1,938.00€
    250mg
    34.00€
  • n-BUTYLTRICHLOROSILANE

    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-Butyltrichlorosilane; Trichlorosilylbutane
    Vapor pressure, 31 °C: 10 mm

    Formula:C4H9Cl3Si
    Purity:97%
    Color and Shape:Liquid
    Molecular weight: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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  • 2-(CARBOMETHOXY)ETHYLTRICHLOROSILANE, tech

    CAS:
    Formula:C4H7Cl3O2Si
    Purity:95%
    Color and Shape:Straw Liquid
    Molecular weight:221.54

    Ref: 3H-SIC2070.0

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

    CAS:
    Formula:C8H8Cl4O2SSi
    Color and Shape:Straw Amber Liquid
    Molecular weight:338.11

    Ref: 3H-SIC2415.0

    2kg
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    100g
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    750g
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