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基于染料敏化BiO阳极的高性能光电化学海水淡化

High-Performance Photoelectrochemical Desalination Based on the Dye-Sensitized BiO Anode.

作者信息

Zhang Jiancong, Wang Xing, Liang Mengjun, Han Minxian, Dai Jinhong, Wei Qiang, Oo Than Zaw, Aung Su Htike, Hui Kwun Nam, Chen Fuming

机构信息

Guangdong Provincial Key Laboratory of Quantum Engineering and Quantum Materials, Guangdong Engineering Technology Research Center of Efficient Green Energy and Environment Protection Materials, School of Physics and Telecommunication Engineering, South China Normal University, Guangzhou 510006, P. R. China.

School of Electronics and Information Engineering, South China Normal University, Foshan 528225, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2022 Jul 27;14(29):33024-33031. doi: 10.1021/acsami.2c04749. Epub 2022 Jul 12.

Abstract

In this work, a solar-driven redox flow desalination system is reported, which combines a solar cell based on a BiO photoanode and a redox flow desalination cell through an integrated electrode. The BiO film was prepared through a simple one-step water bath deposition method and served as a photoanode after the coating of the N719 dye. The activated carbon (AC)-coated graphite paper served as both the integrated electrode and counter electrode. The I/I redox electrolyte circulates in the solar cell channel between the photoanode and intergrated electrode, while the [Fe(CN)]/[Fe(CN)] electrolyte circulates in the redox flow desalination part between the integrated electrode and counter electrode. This dye-sensitized solar-driven desalination cell is capable of achieving a maximum salt removal rate of 62.89 μg/(cm·min) without consuming any electrical power. The combination of the solar cell and redox flow desalination is highly efficient with double functions of desalination and energy release using light as a driving force. This current research work is significant for the development of efficient and stable photoanode materials in photoelectrochemical desalination.

摘要

在这项工作中,报道了一种太阳能驱动的氧化还原液流脱盐系统,该系统通过集成电极将基于BiO光阳极的太阳能电池与氧化还原液流脱盐电池相结合。BiO薄膜通过简单的一步水浴沉积法制备,并在涂覆N719染料后用作光阳极。涂有活性炭(AC)的石墨纸用作集成电极和对电极。I/I氧化还原电解质在光阳极和集成电极之间的太阳能电池通道中循环,而[Fe(CN)]/[Fe(CN)]电解质在集成电极和对电极之间的氧化还原液流脱盐部分中循环。这种染料敏化太阳能驱动脱盐电池能够在不消耗任何电力的情况下实现最大62.89μg/(cm·min)的脱盐率。太阳能电池与氧化还原液流脱盐的结合效率很高,具有以光为驱动力的脱盐和能量释放双重功能。这项当前的研究工作对于光电化学脱盐中高效稳定的光阳极材料的开发具有重要意义。

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