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采用天然黄木衍生的、自立的、分级多孔碳电极实现高效电容去离子。

Efficient Capacitive Deionization Using Natural Basswood-Derived, Freestanding, Hierarchically Porous Carbon Electrodes.

机构信息

School of Chemistry and Chemical Engineering , Beijing Institute of Technology , Beijing 100081 , People's Republic of China.

State Key Lab of Organic-Inorganic Composites, Beijing Advanced Innovation Center for Soft Matter Science and Engineering , Beijing University of Chemical Technology , Beijing 100029 , China.

出版信息

ACS Appl Mater Interfaces. 2018 Sep 19;10(37):31260-31270. doi: 10.1021/acsami.8b08232. Epub 2018 Sep 6.

Abstract

Carbon electrodes are of great importance in constructing high-performance capacitive deionization (CDI) devices. However, the use of conventional carbon electrodes for CDI is limited because of their poor mechanical stability and low mass loading. Herein, we report a binder-free, freestanding, robust, and ultrathick carbon electrode derived from a wood carbon framework (WCF) for CDI applications. The WCF inherits the unique structure of natural basswood, containing straightly aligned channels interconnected with highly ordered, open, and hierarchical pores. A CDI device based on thick WCF electrodes (1200 μm, equal to a mass loading of 50 mg cm) exhibits a remarkable areal salt adsorption capacity (SAC) of 0.3 mg cm, a high volumetric SAC of 2.4 mg cm, and a competitive gravimetric SAC of 5.7 mg g. Also, the good mechanical strength and water tolerance of the WCF electrodes improve the cycling stability of the CDI device. Finite element simulations of ion transport behavior indicate that the unique structure of the WCF substantially facilitates ion transport within the ultrathick CDI electrodes. This work provides a viable route to the rational design of freestanding and ultrathick electrodes for CDI applications and offers insights into the structure-performance relationship of CDI electrodes.

摘要

碳电极在构建高性能电容去离子(CDI)设备中具有重要意义。然而,由于其机械稳定性差和质量负载低,传统的碳电极在 CDI 中的应用受到限制。在此,我们报告了一种无粘结剂、自支撑、坚固和超厚的碳电极,它是由木碳框架(WCF)衍生而来,可用于 CDI 应用。WCF 继承了天然椴木的独特结构,包含与高度有序、开放和分层孔相互连接的直线排列的通道。基于厚 WCF 电极(1200μm,相当于 50mg cm 的质量负载)的 CDI 装置表现出显著的比表面积盐吸附容量(SAC)为 0.3mg cm,高体积 SAC 为 2.4mg cm,和具有竞争力的重量 SAC 为 5.7mg g。此外,WCF 电极良好的机械强度和耐水性提高了 CDI 装置的循环稳定性。离子传输行为的有限元模拟表明,WCF 的独特结构极大地促进了超厚 CDI 电极内的离子传输。这项工作为 CDI 应用中自支撑和超厚电极的合理设计提供了可行的途径,并深入了解 CDI 电极的结构-性能关系。

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