Polymer-supported reagents, catalysts, and sorbents: Evolution and exploitation - A personalized view

被引:90
作者
Sherrington, DC [1 ]
机构
[1] Univ Strathclyde, Dept Pure & Appl Chem, Glasgow G1 1XL, Lanark, Scotland
关键词
polymer supports; resins; polymeric reagents; polymer-supported catalysts; resin scavengers; solid-phase synthesis; ion-exchange resin catalysts;
D O I
10.1002/pola.1213
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
The solid-phase method for oligopeptide synthesis was introduced by Professor Bruce Merrifield in 1963, but in practice the origins of polymer-supported reagents, catalysts. and so forth trace back to the early development of ion exchange and catalysis by sulfonic acid resins. This highlight summarizes how the evolution of solid-phase organic synthesis occurred in parallel with the development of supported reactive species and indicates the interchange between these areas in the last 30 years or so. The treatment is essentially a personalized one as seen from the author's own laboratory in the United Kingdom and is not intended to review the whole field. The emergence of the international series of conferences on polymer-supported organic chemistry is emphasized as a key development that stimulated and maintained the area before its importance was recognized more widely by both academic and industrial chemists. The requirement of robotic technologies, as the basis for high-throughput combinatorial and parallel synthesis in the pharmaceutical industry, has brought the relevance of supported chemistry to the attention of all synthetic chemists. At the same time, the recognition that all industrial chemical processes need to meet appropriate environmental standards has focused attention on the use of heterogenized reactive species as a potentially important technology for achieving the greening of chemistry. These two factors have brought polymer-supported reactive chemistry to center stage, so to speak, and the early principles laid down over 2 decades ago are now being developed and exploited at an amazing rate. From a rather slow start, through a number of ups and downs in its development, the area of polymer-supported chemistry now seems poised to join the more routine world of synthesis and to become a methodology used by all as and when appropriate. (C) 2001 John Wiley & Sons. Inc.
引用
收藏
页码:2364 / 2377
页数:14
相关论文
共 93 条
[1]  
Adams B.A., 1935, J SOC CHEM IND LOND, V54
[2]   PREPARATION AND SYNTHETIC APPLICATION OF CELLULOSE-SUPPORTED PHASE-TRANSFER CATALYSTS [J].
AKELAH, A ;
SHERRINGTON, DC .
EUROPEAN POLYMER JOURNAL, 1982, 18 (04) :301-305
[3]  
AKELAH A, 1983, POLYM COMMUN, V24, P147
[4]   APPLICATION OF FUNCTIONALIZED POLYMERS IN ORGANIC-SYNTHESIS [J].
AKELAH, A ;
SHERRINGTON, DC .
CHEMICAL REVIEWS, 1981, 81 (06) :557-587
[5]  
AKLEAH A, 1983, POLYMER, V24, P147
[6]   Synthesis of spherical particulate polysiloxane resins as catalyst supports [J].
Alder, KI ;
Sherrington, DC .
CHEMICAL COMMUNICATIONS, 1998, (01) :131-132
[7]   Polymer-supported chiral Co(salen) complexes: Synthetic applications and mechanistic investigations in the hydrolytic kinetic resolution of terminal epoxides [J].
Annis, DA ;
Jacobsen, EN .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1999, 121 (17) :4147-4154
[8]  
Astle M.J., 1957, ION EXCHANGERS ORGAN, P658
[9]   CYANOETHYLATION OF ALCOHOLS [J].
ASTLE, MJ ;
ETHERINGTON, RW .
INDUSTRIAL AND ENGINEERING CHEMISTRY, 1952, 44 (12) :2871-2872
[10]   A PHYSICALLY SUPPORTED GEL POLYMER FOR LOW-PRESSURE, CONTINUOUS-FLOW SOLID-PHASE REACTIONS - APPLICATION TO SOLID-PHASE PEPTIDE-SYNTHESIS [J].
ATHERTON, E ;
BROWN, E ;
SHEPPARD, RC ;
ROSEVEAR, A .
JOURNAL OF THE CHEMICAL SOCIETY-CHEMICAL COMMUNICATIONS, 1981, (21) :1151-1152