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基于光腐蚀的 BiOCl 光热材料用于协同太阳能驱动的海水淡化和光电化学储能与释放。

Photocorrosion-Based BiOCl Photothermal Materials for Synergistic Solar-Driven Desalination and Photoelectrochemistry Energy Storage and Release.

机构信息

Liaoning Key Laboratory for Green Synthesis and Preparative Chemistry of Advanced Materials, College of Chemistry, Liaoning University, Shenyang 110036, China.

Analysis Center, Shenyang University of Chemical Technology, Shenyang 110141, China.

出版信息

ACS Appl Mater Interfaces. 2023 Apr 12;15(14):17947-17956. doi: 10.1021/acsami.3c01277. Epub 2023 Mar 28.

Abstract

Solar-driven interfacial evaporation is one of the most promising desalination technologies. However, few studies have effectively combined energy storage with evaporation processes. Here, a novel multifunctional interfacial evaporator, calcium alginate hydrogel/bismuth oxychloride/carbon black (HBiC), is designed, which integrates the characteristics of interfacial evaporation and direct photoelectric conversion. Under illumination, the Bi nanoparticles which were produced by photoetching of BiOCl and its reaction heat are simultaneously used for the heating of water molecules. Meanwhile, part of the solar energy is converted into chemical energy through the photocorrosion reaction and stored in HBiC. At night, Bi NPs undergo autooxidation reaction and an electric current is generated during this process (like a metal-air battery), in which the maximum current density is more than 15 μA cm. This scientific design cleverly combines desalination with power generation and provides a new development direction for energy collection and storage.

摘要

太阳能驱动的界面蒸发是最有前途的海水淡化技术之一。然而,很少有研究能够有效地将能量存储与蒸发过程结合起来。在这里,设计了一种新型多功能界面蒸发器,海藻酸钠水凝胶/氧化铋氯/炭黑(HBiC),它集成了界面蒸发和直接光电转换的特点。在光照下,BiOCl 的光蚀及其反应热生成的 Bi 纳米颗粒同时用于加热水分子。同时,部分太阳能通过光腐蚀反应转化为化学能并储存在 HBiC 中。在夜间,Bi NPs 会发生自动氧化反应,在此过程中会产生电流(类似于金属-空气电池),最大电流密度超过 15 μA cm。这种科学设计巧妙地将海水淡化与发电结合起来,为能源收集和存储提供了新的发展方向。

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