RAFT polymerization to form stimuli-responsive polymers

被引:291
|
作者
Moad, Graeme [1 ]
机构
[1] CSIRO Mfg, Private Bag 10, Clayton, Vic 3169, Australia
关键词
FRAGMENTATION-CHAIN-TRANSFER; LIVING RADICAL POLYMERIZATION; AMPHIPHILIC BLOCK-COPOLYMERS; ONE-POT SYNTHESIS; LIGHT-HARVESTING POLYMERS; CROSS-LINKED MICELLES; STAR CCS POLYMERS; INITIO EMULSION POLYMERIZATION; PHOTOINDUCED ELECTRON-TRANSFER; END-GROUP FUNCTIONALIZATION;
D O I
10.1039/c6py01849a
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Stimuli-responsive polymers adapt to their surrounding environment. These polymers are capable of responding to a variety of external stimuli, which include optical, electrical, thermal, mechanical, redox, pH, chemical, environmental and biological signals. They are encountered in many environments. They can have a variety of architectures (e.g., copolymers, blocks, stars). They may be present as isolated macromolecules in a medium, as supramolecular assemblies, as smart coatings, as networks or some combination of these possibilities. This paper is concerned with the process of forming such polymers by radical polymerization with reversible addition fragmentation chain transfer (RAFT). RAFT polymerization has an advantage over most processes for reversible deactivation radical polymerization (RDRP) in its tolerance of a wide range of unprotected functionalities. Three basic strategies for forming stimuli-responsive polymers are considered: RAFT polymerization of functional monomers (a "grafting through" approach), the post-polymerization modification of RAFT-synthesized polymers (some combination of "grafting through", "from" and "to"), and the use of functional RAFT agents and RAFT end-group transformation (often "grafting from"). Other syntheses involve combinations of these processes and of RAFT polymerization with other processes. We also consider the responsiveness of the thiocarbonylthio-functionality of macroRAFT agents in terms of their ability to directly initiate and control RAFT polymerization and to regulate the properties of RAFT-synthesized polymers.
引用
收藏
页码:177 / 219
页数:43
相关论文
共 50 条
  • [41] Synthesis and applications of stimuli-responsive hyperbranched polymers
    Wang, Dali
    Jin, Yue
    Zhu, Xinyuan
    Yan, Deyue
    PROGRESS IN POLYMER SCIENCE, 2017, 64 : 114 - 153
  • [42] Structured polymers with stimuli-responsive chiroptical behavior
    Jaycox, Gary D.
    Lustig, Steven R.
    Everlof, Gerry J.
    American Chemical Society, Polymer Preprints, Division of Polymer Chemistry, 2000, 41 (01): : 910 - 911
  • [43] Stimuli-responsive functionalized insulated conjugated polymers
    Hiroshi Masai
    Jun Terao
    Polymer Journal, 2017, 49 : 805 - 814
  • [44] Cell microcarriers and microcapsules of stimuli-responsive polymers
    Brun-Graeppi, Amanda K. Andriola Silva
    Richard, Cyrille
    Bessodes, Michel
    Scherman, Daniel
    Merten, Otto-Wilhelm
    JOURNAL OF CONTROLLED RELEASE, 2011, 149 (03) : 209 - 224
  • [45] Stimuli-Responsive Phosphorus-Based Polymers
    Teasdale, Ian
    EUROPEAN JOURNAL OF INORGANIC CHEMISTRY, 2019, 2019 (11-12) : 1445 - 1456
  • [46] Stimuli-responsive polymers: Fundamental considerations and applications
    Gao, Yongfeng
    Wei, Menglian
    Li, Xue
    Xu, Wenwen
    Ahiabu, Andrews
    Perdiz, Juliana
    Liu, Zining
    Serpe, Michael J.
    MACROMOLECULAR RESEARCH, 2017, 25 (06) : 513 - 527
  • [47] Stimuli-responsive polymers and their applications in separation science
    Musarurwa, Herbert
    Tavengwa, Nikita Tawanda
    Reactive and Functional Polymers, 2022, 175
  • [48] Multi-functional stimuli-responsive polymers
    Michal, Brian T.
    Rowan, Stuart J.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2013, 245
  • [49] Stimuli-responsive polymers and their applications in drug delivery
    Bawa, Priya
    Pillay, Viness
    Choonara, Yahya E.
    du Toit, Lisa C.
    BIOMEDICAL MATERIALS, 2009, 4 (02)
  • [50] Stimuli-responsive polymers: Fundamental considerations and applications
    Yongfeng Gao
    Menglian Wei
    Xue Li
    Wenwen Xu
    Andrews Ahiabu
    Juliana Perdiz
    Zining Liu
    Michael J. Serpe
    Macromolecular Research, 2017, 25 : 513 - 527