Synthesis and evaluation of a ferrocene-bonded silica phase for reversed-phase high-performance liquid chromatography

被引:0
作者
Q. Y. Huai
X. L. Wang
Y. M. Zuo
机构
[1] Nankai University,Department of Chemistry
[2] Qufu Normal University,Department of Chemistry
[3] Nankai University,College of Life Science
来源
Chromatographia | 2002年 / 55卷
关键词
Column liquid chromatography; Ferrocene-bonded silica stationary phase; π-π Interactions; Hydrophobic interactions;
D O I
暂无
中图分类号
学科分类号
摘要
The preparation, characterization, and potential liquid chromatographic applications of a ferrocene-bonded silica stationary phase are presented. The phase was prepared by covalent bonding of ferrocene-derivatized aminosilane to silica gel then end-capping with trimethyl-chlorosilane. Use of the new stationary phase enabled good separations of alkylbenzenes, halobenzenes, polycyclic aromatic hydrocarbons, and even basic compounds under reversed-phase conditions. The linear relationship between logk (wherek is the retention factor) and the number of π electrons (nπ) in the structures of polyaromatic hydrocarbons indicates that the mechanism of retention on the new stationary phase involves strong π-π interaction with one of the cyclopentadienyl (Cp) groups of the ferrocene. The retention increment for a methylene group was calculated. The value indicates that the mechanism of retention on the new stationary phase also involves a strong hydrophobic interaction, so the phase enables effective separation of compounds with a benzenering.
引用
收藏
页码:549 / 553
页数:4
相关论文
共 50 条
  • [21] Determination of iodate in iodized salt by reversed-phase high-performance liquid chromatography with UV detection
    Xu, XR
    Li, HB
    Gu, JD
    Paeng, KJ
    CHROMATOGRAPHIA, 2004, 60 (11-12) : 721 - 723
  • [22] Determination of Iodate in Iodized Salt by Reversed-Phase High-Performance Liquid Chromatography with UV Detection
    X. R. Xu
    H. B. Li
    J.-D. Gu
    K. J. Paeng
    Chromatographia, 2004, 60 : 721 - 723
  • [23] Analysis of fatty acids in mouse cells using reversed-phase high-performance liquid chromatography
    Li, Z
    Gu, T
    Kelder, B
    Kopchick, JJ
    CHROMATOGRAPHIA, 2001, 54 (7-8) : 463 - 467
  • [24] Native and modified alumina, titania and zirconia in normal and reversed-phase high-performance liquid chromatography
    Kurganov, A
    Trudinger, U
    Isaeva, T
    Unger, K
    CHROMATOGRAPHIA, 1996, 42 (3-4) : 217 - 222
  • [25] Analysis of fatty acids in mouse cells using reversed-phase high-performance liquid chromatography
    Z. Li
    T. Gu
    B. Kelder
    J. J. Kopchick
    Chromatographia, 2001, 54 : 463 - 467
  • [26] INFLUENCE OF INJECTION CONDITIONS IN REVERSED-PHASE HIGH-PERFORMANCE LIQUID-CHROMATOGRAPHY OF CHLOROPHYLLS AND CAROTENOIDS
    ZAPATA, M
    GARRIDO, JL
    CHROMATOGRAPHIA, 1991, 31 (11-12) : 589 - 594
  • [27] Evaluation of selectivity for L-glutamide-derived highly ordered assemblies in reversed-phase high-performance liquid chromatography
    Rahman, M. Mizanur
    Takafuji, Makoto
    Ihara, Hirotaka
    TALANTA, 2009, 77 (03) : 1228 - 1237
  • [28] EVALUATION OF SOLUTE HYDROPHOBICITY BY REVERSED-PHASE HIGH-PERFORMANCE LIQUID-CHROMATOGRAPHY USING AQUEOUS BINARY MOBILE PHASES
    KAIBARA, A
    HOHDA, C
    HIRATA, N
    HIROSE, M
    NAKAGAWA, T
    CHROMATOGRAPHIA, 1990, 29 (5-6) : 275 - 288
  • [29] Mobile phase composition for resolving whey proteins in reversed-phase high performance liquid chromatography
    Yong, AJ
    Du, YC
    Hong, SB
    Row, KH
    KOREAN JOURNAL OF CHEMICAL ENGINEERING, 2003, 20 (04) : 705 - 708
  • [30] Buffered superheated water as an fluent for reversed-phase high performance liquid chromatography
    Chienthavorn, O
    Smith, RM
    CHROMATOGRAPHIA, 1999, 50 (7-8) : 485 - 489