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Review Macromolecular rapid communications. 2017 Feb;38(4). doi: 10.1002/marc.201600644 Q24.32025

Branched Macromolecular Architectures for Degradable, Multifunctional Phosphorus-Based Polymers

基于磷的可降解多功能聚合物的分支型大分子结构架 翻译改进

Helena Henke  1, Oliver Brüggemann  1, Ian Teasdale  1

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  • 1 Institute of Polymer Chemistry, Johannes Kepler University Linz, Altenberger Straße 69, 4040, Linz, Austria.
  • DOI: 10.1002/marc.201600644 PMID: 28044384

    摘要 Ai翻译

    This feature article briefly highlights some of the recent advances in polymers in which phosphorus is an integral part of the backbone, with a focus on the preparation of functional, highly branched, soluble polymers. A comparison is made between the related families of materials polyphosphazenes, phosphazene/phosphorus-based dendrimers and polyphosphoesters. The work described herein shows this to be a rich and burgeoning field, rapidly catching up with organic chemistry in terms of the macromolecular synthetic control and variety of available macromolecular architectures, whilst offering unique property combinations not available with carbon backbones, such as tunable degradation rates, high multi-valency and facile post-polymerization functionalization. As an example of their use in advanced applications, we highlight some investigations into their use as water-soluble drug carriers, whereby in particular the degradability in combination with multivalent nature has made them useful materials, as underlined by some of the recent studies in this area.

    Keywords: biodegradable; branched macromolecular architectures; phosphorus-based polymers; polyphosphazenes; polyphosphoesters.

    Keywords:degradable polymers

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    期刊名:Macromolecular rapid communications

    缩写:MACROMOL RAPID COMM

    ISSN:1022-1336

    e-ISSN:1521-3927

    IF/分区:4.3/Q2

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