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通过水相自催化聚合大规模制备具有尺寸依赖性超级电容器性能的单分散碳微球

Mass Production of Monodisperse Carbon Microspheres with Size-Dependent Supercapacitor Performance via Aqueous Self-Catalyzed Polymerization.

作者信息

Yu Qiang, Guan Doudou, Zhuang Zechao, Li Jiantao, Shi Changwei, Luo Wen, Zhou Liang, Zhao Dongyuan, Mai Liqiang

机构信息

State Key Laboratory of Advanced Technology for, Materials Synthesis and Processing, International School of Materials Science and Engineering, Wuhan University of Technology, Wuhan, 430070, P.R. China.

Department of Chemistry, University of California, Berkeley, CA, 94720, USA.

出版信息

Chempluschem. 2017 Jun;82(6):872-878. doi: 10.1002/cplu.201700182.

Abstract

A facile, aqueous, self-catalyzed polymerization method has been developed for the mass production of monodisperse phenolic resin and carbon microspheres. The synthesis is mainly based on the self-catalyzed reaction between phenol derivatives and the hydrolysis products of hexamethylenetetramine (HMTA). The obtained phenolic resin spheres have a tunable size of 0.8-6.0 μm, depending on the type of phenol and HMTA/phenol ratio. Treating the phenolic resin with steam at an elevated temperature results in monodisperse carbon microspheres with abundant micropores, high surface area, and rich surface functionality. The resultant carbon spheres exhibit a size-dependent electrical double-layer capacitor performance; the capacitance increases with decreasing particle size. The nitrogen and oxygen codoped carbon spheres with the smallest size (≈600 nm) deliver a high specific capacitance (282 F g at 0.5 A g ), excellent rate capability (170 F g at 20 A g ), and outstanding cycling stability (95.3 % capacitance retention after 10 000 cycles at 5 A g ). This study provides a new avenue for the mass production of monodisperse carbon microspheres.

摘要

已开发出一种简便的水相自催化聚合方法,用于大规模生产单分散酚醛树脂和碳微球。该合成主要基于酚类衍生物与六亚甲基四胺(HMTA)水解产物之间的自催化反应。所得酚醛树脂球的尺寸可在0.8 - 6.0 μm范围内调节,这取决于酚的类型和HMTA/酚的比例。在高温下用蒸汽处理酚醛树脂可得到具有丰富微孔、高比表面积和丰富表面官能团的单分散碳微球。所得碳球表现出尺寸依赖性的双电层电容器性能;电容随粒径减小而增加。尺寸最小(≈600 nm)的氮氧共掺杂碳球具有高比电容(在0.5 A g 时为282 F g )、优异的倍率性能(在20 A g 时为170 F g )和出色的循环稳定性(在5 A g 下10000次循环后电容保持率为95.3 %)。本研究为大规模生产单分散碳微球提供了一条新途径。

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