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1              The conformational order of the octadecylsilane alkyl chains was assessed using Raman sp
2 ochromatography was chemically modified with octadecylsilane and coupled to a 1.2-cm straight separat
3          This stationary phase contains both octadecylsilanes and dialkylamines.
4              The solution-phase reactions of octadecylsilane (C(18)H(37)SiH(3)) with 10 high surface
5 2 stationary phases and similar high-density octadecylsilane (C18) bonded phases.
6 major atrazine metabolites over 31 min on an octadecylsilane column.
7                                              Octadecylsilane H3 Si(CH2 )17 CH3 , and functional silan
8  are slurry-packed with 1.0-micron nonporous octadecylsilane-modified (C18) silica spheres.
9 sing a single octanol-filled reversed-phase, octadecylsilane-modified (C18-silica) chromatographic pa
10 final base material selected for the SRM was octadecylsilane-modified silica (C(18)) with a nominal 2
11 33 microns were slurry packed with 5 microns octadecylsilane-modified silica particles.
12 mental conditions with variation of only the octadecylsilane/octanol ratio.
13            We use a tandem combination of an octadecylsilane (ODS) and a carbon-coated zirconia (C-Zr
14    In this study, a tandem combination of an octadecylsilane (ODS) and a polybutadiene-coated zirconi
15 hase were compared to those for conventional octadecylsilane (ODS) bonded phases, and the effect of t
16  of open tubular columns with surface-bonded octadecylsilane (ODS) stationary-phase coating for capil
17        Here we address the question of how n-octadecylsilane (OTS)-derived self-assembled monolayers
18 r containing, and compared to a conventional octadecylsilane phase.
19 at an extended hydrophobic interface with an octadecylsilane self-assembled monolayer on fused silica
20 measured in plasma and urine by combining an octadecylsilane solid-phase extraction for sample prepar
21 r picture of temperature-induced disorder in octadecylsilane stationary phases is proposed, with diso
22  than that reported earlier for high-density octadecylsilane stationary phases prepared using convent
23 ormational order in a series of high-density octadecylsilane stationary phases ranging in surface cov
24 ormational order in a series of high-density octadecylsilane stationary phases ranging in surface cov
25 ormational order in a series of high-density octadecylsilane stationary phases ranging in surface cov
26                                              Octadecylsilane stationary phases ranging in surface cov
27 r better than that of commercially available octadecylsilane stationary phases under identical chroma

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