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介孔离子有机网络:从合成到材料应用。

Nanoporous ionic organic networks: from synthesis to materials applications.

机构信息

Max Planck Institute of Colloids and Interfaces, Department of Colloid Chemistry, D-14424 Potsdam, Germany.

出版信息

Chem Soc Rev. 2016 Nov 21;45(23):6627-6656. doi: 10.1039/c6cs00597g.

Abstract

The past decade has witnessed rapid progress in the synthesis of nanoporous organic networks or polymer frameworks for various potential applications. Generally speaking, functionalization of porous networks to add extra properties and enhance materials performance could be achieved either during the pore formation (thus a concurrent approach) or by post-synthetic modification (a sequential approach). Nanoporous organic networks which include ion pairs bound in a covalent manner are of special importance and possess extreme application profiles. Within these nanoporous ionic organic networks (NIONs), here with a pore size in the range from sub-1 nm to 100 nm, we observe a synergistic coupling of the electrostatic interaction of charges, the nanoconfinement within pores and the addressable functional units in soft matter resulting in a wide variety of functions and applications, above all catalysis, energy storage and conversion, as well as environment-related operations. This review aims to highlight the recent progress in this area, and seeks to raise original perspectives that will stimulate future advancements at both the fundamental and applied level.

摘要

过去十年见证了纳米多孔有机网络或聚合物框架在各种潜在应用中的快速发展。一般来说,为了添加额外的性质和增强材料的性能,可以在孔形成过程中(因此是同时进行的方法)或通过后合成修饰(顺序方法)对多孔网络进行功能化。包括通过共价键结合的离子对的纳米多孔有机网络具有特殊的重要性,并具有极端的应用概况。在这些纳米多孔离子有机网络(NION)中,这里的孔径范围从亚 1nm 到 100nm,我们观察到电荷静电相互作用、纳米限域和软物质中可寻址的功能单元的协同耦合,导致了各种各样的功能和应用,尤其是催化、能量存储和转换,以及与环境相关的操作。这篇综述旨在强调这一领域的最新进展,并寻求提出将在基础和应用层面激发未来进展的原始观点。

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