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经验公式(希尔记法):
C10H22O3Si
化学文摘社编号:
分子量:
218.37
NACRES:
NA.23
PubChem Substance ID:
UNSPSC Code:
12352103
EC Number:
241-889-7
MDL number:
产品名称
(3-环氧丙氧基丙基)二甲基乙氧基硅烷, 97%
InChI key
HHBOIIOOTUCYQD-UHFFFAOYSA-N
InChI
1S/C10H22O3Si/c1-4-13-14(2,3)7-5-6-11-8-10-9-12-10/h10H,4-9H2,1-3H3
SMILES string
CCO[Si](C)(C)CCCOCC1CO1
assay
97%
form
liquid
refractive index
n20/D 1.434 (lit.)
bp
100 °C/3 mmHg (lit.)
density
0.95 g/mL at 25 °C (lit.)
Application
3-Glycidoxypropyldimethylethoxysilane was used to functionalize glass substrates to study fluorescence enhancement performance of fabricated photonic crystal sensor. The product could be used for the silanization of hydroxlated Si(100) wafers, and optical chips. Glycidoxypropyldimethylethoxysilane, along with several silanes, was used to form bonded phases for supercritical fluid chromatography (SFC).
存储类别
10 - Combustible liquids
wgk
WGK 3
flash_point_f
189.0 °F - closed cup
flash_point_c
87.22 °C - closed cup
ppe
Eyeshields, Gloves, multi-purpose combination respirator cartridge (US)
Richard J Sheridan et al.
Macromolecules, 50(17), 6668-6678 (2017-10-04)
We present a method for the direct measurement of the relative energy of interaction between a solvated polymer and a solid interface. By tethering linear chains covalently to the surface, we ensured the idealized and constant configuration of polymer molecules
Hartman interferometer: versatile integrated optic sensor for label-free, real-time quantification of nucleic acids, proteins, and pathogens.
Schneider BH, et al.
Clinical Chemistry, 43(9), 1757-1763 (1997)
Silica surface interactions of diol?bonded phases in packed capillary column supercritical fluid chromatography
Shen Y and Lee ML
J. Microcol. Sep., 8(6), 413-420 (1996)
Formation of dicarboxylic acid-terminated monolayers on silicon wafer surface.
Demirci S and Caykara T
Surface Science, 604(7), 649-653 (2010)
Multicolor fluorescence enhancement from a photonics crystal surface.
Pokhriyal A, et al.
Applied Physics Letters, 97(2), 121108-121108 (2010)
商品
Mesoporous materials, such as aerogels, offer advantages for practical hydrogen storage. They have large surface areas, open porosity, small pore sizes, and the ability to coat the surface with one or more compounds.
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