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聚合物衍生的杂原子掺杂多孔碳材料。

Polymer-Derived Heteroatom-Doped Porous Carbon Materials.

机构信息

Key Laboratory of Functional Polymer Materials (Ministry of Education), Institute of Polymer Chemistry, College of Chemistry, Nankai University, Tianjin, 300071, P. R. China.

Department for Electrochemical Energy Storage, Helmholtz-Zentrum Berlin für Materialien und Energie, Hahn-Meitner-Platz 1, 14109 Berlin, Germany.

出版信息

Chem Rev. 2020 Sep 9;120(17):9363-9419. doi: 10.1021/acs.chemrev.0c00080. Epub 2020 Aug 6.

Abstract

Heteroatom-doped porous carbon materials (HPCMs) have found extensive applications in adsorption/separation, organic catalysis, sensing, and energy conversion/storage. The judicious choice of carbon precursors is crucial for the manufacture of HPCMs with specific usages and maximization of their functions. In this regard, polymers as precursors have demonstrated great promise because of their versatile molecular and nanoscale structures, modulatable chemical composition, and rich processing techniques to generate textures that, in combination with proper solid-state chemistry, can be maintained throughout carbonization. This Review comprehensively surveys the progress in polymer-derived functional HPCMs in terms of how to produce and control their porosities, heteroatom doping effects, and morphologies and their related use. First, we summarize and discuss synthetic approaches, including hard and soft templating methods as well as direct synthesis strategies employing polymers to control the pores and/or heteroatoms in HPCMs. Second, we summarize the heteroatom doping effects on the thermal stability, electronic and optical properties, and surface chemistry of HPCMs. Specifically, the heteroatom doping effect, which involves both single-type heteroatom doping and codoping of two or more types of heteroatoms into the carbon network, is discussed. Considering the significance of the morphologies of HPCMs in their application spectrum, potential choices of suitable polymeric precursors and strategies to precisely regulate the morphologies of HPCMs are presented. Finally, we provide our perspective on how to predefine the structures of HPCMs by using polymers to realize their potential applications in the current fields of energy generation/conversion and environmental remediation. We believe that these analyses and deductions are valuable for a systematic understanding of polymer-derived carbon materials and will serve as a source of inspiration for the design of future HPCMs.

摘要

杂原子掺杂多孔碳材料(HPCM)在吸附/分离、有机催化、传感和能量转换/存储等领域得到了广泛的应用。明智地选择碳前体对于制造具有特定用途和最大化其功能的 HPCM 至关重要。在这方面,聚合物作为前体具有很大的潜力,因为它们具有多样的分子和纳米结构、可调节的化学组成以及丰富的加工技术,可以生成纹理,与适当的固态化学相结合,可以在碳化过程中保持。

本综述全面综述了聚合物衍生功能 HPCM 的进展,包括如何生产和控制其孔隙率、杂原子掺杂效应以及形态及其相关用途。首先,我们总结和讨论了合成方法,包括硬模板和软模板方法以及直接合成策略,利用聚合物来控制 HPCM 中的孔和/或杂原子。其次,我们总结了杂原子掺杂对 HPCM 的热稳定性、电子和光学性质以及表面化学的影响。具体来说,讨论了杂原子掺杂效应,包括单型杂原子掺杂和两种或多种类型的杂原子共掺杂到碳网络中。考虑到 HPCM 形态在其应用光谱中的重要性,提出了选择合适聚合物前体和精确调节 HPCM 形态的潜在策略。最后,我们提供了我们的观点,即如何通过使用聚合物来预先定义 HPCM 的结构,以实现其在当前能源产生/转换和环境修复领域的潜在应用。我们相信这些分析和推论对于系统理解聚合物衍生碳材料具有重要意义,并将为设计未来的 HPCM 提供灵感。

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