Synthesis of well-defined macroporous polymer monoliths by sol-gel polymerization in supercritical CO2

被引:42
|
作者
Cooper, AI
Wood, CD
Holmes, AB
机构
[1] Univ Cambridge, Melville Lab Polymer Synth, Cambridge CB2 3RA, England
[2] Univ Liverpool, Dept Chem, Liverpool L69 7ZD, Merseyside, England
关键词
D O I
10.1021/ie000159k
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The synthesis of continuous macroporous polymers (i.e., "polymer monoliths") is currently a subject of great interest for a variety of applications. These materials may have certain advantages over more traditional macroporous polymer beads, mainly because of the absence of interstitial voids in the "packed" state. Typically, a mold is filled with a polymerization mixture containing a cross-linking monomer, functional comonomers, initiator, and a porogenic diluent. This mixture is then polymerized to form a continuous porous monolith that conforms to the shape of the mold. One drawback of the method is that large volumes of organic solvents are required (typically similar to1:1 solvent to monomer), and these solvents can be hard to remove from the polymer matrix at the end of the reaction. Also, the pore structure of the polymer can be remarkably sensitive to very small changes in the composition of the porogenic solvent mixture. Recently, we have developed methods for the synthesis of highly cross-linked polymer monoliths using supercritical carbon dioxide as the porogenic solvent (Cooper, A. I.; Holmes, A. B. Adv. Mater. 1999, 11, 1270). In this paper, we describe how it is possible to achieve fine control over average pore sizes and pore size distributions, both by variations in the density of the supercritical solvent and also via reverse micellar imprinting.
引用
收藏
页码:4741 / 4744
页数:4
相关论文
共 50 条
  • [11] Effects of alpha substituents on the synthesis of well-defined star polymers via a sol-gel approach
    Kelts, L.W.
    Long, T.E.
    Polymer Preprints, Division of Polymer Chemistry, American Chemical Society, 1992, 33 (01):
  • [12] Rigid macroporous poly(divinylbenzene) monoliths with a well-defined bicontinuous morphology prepared by living radical polymerization
    Kanamori, Kazuyoshi
    Nakanishi, Kazuki
    Hanada, Teiichi
    ADVANCED MATERIALS, 2006, 18 (18) : 2407 - +
  • [13] Synthesis of well-defined porous column packings using supercritical CO2 as the porogenic solvent.
    Cooper, AI
    Hebb, AK
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2001, 221 : U610 - U610
  • [14] Well-defined skeletal macroporous polymer monoliths fabricated with a novel type of amphiphilic diblock copolymer as a phase separator
    Xin, Peiyong
    Qi, Li
    Zhang, Rongyue
    Yao, Chunhe
    Wei, Xiaoyi
    Yang, Gengliang
    Chen, Yi
    POLYMER, 2010, 51 (15) : 3410 - 3415
  • [15] Formation of titania nanofibers:: A direct sol-gel route in supercritical CO2
    Sui, RH
    Rizkalla, AS
    Charpentier, PA
    LANGMUIR, 2005, 21 (14) : 6150 - 6153
  • [16] Well-Defined Flowerlike NdOCl Nanostructures: Nonaqueous Sol-Gel Synthesis, Nanoscale Characterization and Their Magnetic and Photoluminescence Properties
    Li, Xinghua
    Deng, Xia
    Zhu, Hao
    Feng, Juan
    Peng, Yong
    Bai, Jintao
    Zheng, Xinliang
    Fan, Haibo
    Wang, Mingzi
    Chen, Haowei
    CHEMISTRY-AN ASIAN JOURNAL, 2014, 9 (02) : 584 - 589
  • [17] Sol-gel processing of VO2 (M) in supercritical CO2 and supercritical CO2/ionic liquid biphasic system
    Nazari, S.
    Charpentier, P. A.
    JOURNAL OF SUPERCRITICAL FLUIDS, 2020, 165
  • [18] Macroporous polymer monoliths with a well-defined three dimensional skeletal morphology derived from a novel phase separator for HPLC
    Shen, Ying
    Qi, Li
    Mao, Lanqun
    POLYMER, 2012, 53 (19) : 4128 - 4134
  • [19] Well-Defined Model CO2 Electroreduction Catalyst
    Ko, Byung Hee
    Jiao, Feng
    CHEM, 2020, 6 (07): : 1506 - 1507
  • [20] Interactions between sol-gel encapsulated myoglobin and carbon dioxide in supercritical CO2
    Ji, Q
    Lloyd, CR
    Dunn, BC
    Eyring, EM
    INSTRUMENTATION SCIENCE & TECHNOLOGY, 1999, 27 (01) : 23 - 29