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基于聚合物的合成方法制备碳基无金属催化剂。

Polymer-Based Synthetic Routes to Carbon-Based Metal-Free Catalysts.

机构信息

Department of Chemistry, Carnegie Mellon University, 4400 Fifth Avenue, Pittsburgh, PA, 15213, USA.

出版信息

Adv Mater. 2019 Mar;31(13):e1804626. doi: 10.1002/adma.201804626. Epub 2018 Oct 21.

Abstract

Carbons are increasingly important as possible alternatives to expensive metal catalysts owing to the wide range of chemical properties they can exhibit and the growing set of synthetic routes available to produce them. This progress report discusses the process of making catalytic carbons from polymeric precursors, focusing on mechanisms of carbonization and how the polymer structures and synthetic procedures affect the resulting carbons. In considering what is necessary to move laboratory catalytic carbons to industrial and commercial applications, the cost and complexity to produce them are a considerable challenge to overcome. Industrially produced carbons are typically made from biopolymers such as lignin while many of the catalytic carbons studied in literature are from synthetic polymers. Thus, studying polymer-derived carbons can provide insights into the carbonization process and the properties of catalytic carbons, which can subsequently be translated to improve biopolymer-derived carbons in an economical way. Aspects of polymer carbonization discussed include carbonization mechanisms, effects of crosslinkers, polymer microstructure, heteroatom control, and effects of nanostructuring.

摘要

碳因其广泛的化学性质和不断增加的合成途径而成为昂贵金属催化剂的替代品,越来越受到重视。本进展报告讨论了由聚合物前体制备催化碳的过程,重点介绍了碳化的机制以及聚合物结构和合成程序如何影响所得碳。在考虑将实验室催化碳推向工业和商业应用时,生产成本和复杂性是需要克服的巨大挑战。工业生产的碳通常由生物聚合物如木质素制成,而文献中研究的许多催化碳则来自合成聚合物。因此,研究聚合物衍生的碳可以深入了解碳化过程和催化碳的性质,这可以随后转化为以经济的方式改进生物聚合物衍生的碳。讨论的聚合物碳化方面包括碳化机制、交联剂的影响、聚合物微观结构、杂原子控制和纳米结构的影响。

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