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活性炭向阳极的电子转移激发并调节流电极电容去离子脱盐。

Electron Transfer of Activated Carbon to Anode Excites and Regulates Desalination in Flow Electrode Capacitive Deionization.

机构信息

State Key Laboratory of Environmental Aquatic Chemistry, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing100085, China.

University of Chinese Academy of Sciences, Beijing100049, China.

出版信息

Environ Sci Technol. 2023 Feb 14;57(6):2566-2574. doi: 10.1021/acs.est.2c09506. Epub 2023 Jan 31.

Abstract

The desalination performance of flow electrode capacitive deionization (FCDI) is determined by the ion adsorption on the powdered activated carbon (PAC) and the electron transfer between the current collector and PAC. However, a comprehensive understanding of rate-limiting steps is lacking, let alone to enhance FCDI desalination by regulating the PAC characteristics. This study showed that the electron transfer between PAC and the current collector on the anode side was the rate-limiting step of FCDI desalination. Compared with W900, the desalination performance of FCDI decreased by 95% when W1200 with weak electron transfer ability was used as a flow electrode. The PAC selected in this study transferred electrons directly through the conductive carbon matrix in FCDI and was mainly affected by graphitization. The desalination performance of FCDI was improved by 20 times when the graphitization degree of PAC increased from 0.69 to 1.03. The minimum energy required for electrons to escape from the PAC surface was reduced by the high degree of graphitization, from 4.27 to 3.52 eV, thus improving the electron transfer capacity of PAC on the anode side. This study provides a direction for the optimization of flow electrodes and further promotes the development of FCDI.

摘要

流电极电容去离子(FCDI)的脱盐性能取决于粉末活性炭(PAC)上的离子吸附和集流器与 PAC 之间的电子转移。然而,对于限速步骤缺乏全面的了解,更不用说通过调节 PAC 特性来增强 FCDI 的脱盐性能了。本研究表明,在 FCDI 脱盐过程中,PAC 与阳极侧集流器之间的电子转移是限速步骤。与 W900 相比,电子转移能力较弱的 W1200 用作流动电极时,FCDI 的脱盐性能下降了 95%。本研究中选用的 PAC 通过 FCDI 中的导电碳基质直接传递电子,主要受石墨化程度的影响。当 PAC 的石墨化程度从 0.69 增加到 1.03 时,FCDI 的脱盐性能提高了 20 倍。高石墨化程度降低了电子从 PAC 表面逃逸所需的最小能量,从 4.27 到 3.52 eV,从而提高了 PAC 在阳极侧的电子转移能力。本研究为优化流电极提供了方向,并进一步推动了 FCDI 的发展。

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