Li Penghui, Zhou Xiaohan, Yang Haoyi, He Yun, Kan Yujiao, Zhang Yang, Shang Yanan, Zhang Yizhen, Cao Xiaoqiang, Leung Michael K H
College of Safety and Environmental Engineering, Shandong University of Science and Technology, Qingdao 266590, China.
School of Chemical and Environmental Engineering, Wuhan Polytechnic University, Wuhan 430024, China.
Materials (Basel). 2024 May 2;17(9):2139. doi: 10.3390/ma17092139.
Environmental pollution and energy crises have garnered global attention. The substantial discharge of organic waste into water bodies has led to profound environmental contamination. Photocatalytic fuel cells (PFCs) enabling the simultaneous removal of refractory contaminants and recovery of the chemical energy contained in organic pollutants provides a potential strategy to solve environmental issues and the energy crisis. This review will discuss the fundamentals, working principle, and configuration development of PFCs and photocatalytic microbial fuel cells (PMFCs). We particularly focus on the strategies for improving the wastewater treatment performance of PFCs/PMFCs in terms of coupled advanced oxidation processes, the rational design of high-efficiency electrodes, and the strengthening of the mass transfer process. The significant potential of PFCs/PMFCs in various fields is further discussed in detail. This review is intended to provide some guidance for the better implementation and widespread adoption of PFC wastewater treatment technologies.
环境污染和能源危机已引起全球关注。有机废物大量排放到水体中导致了严重的环境污染。光催化燃料电池(PFC)能够同时去除难降解污染物并回收有机污染物中所含的化学能,为解决环境问题和能源危机提供了一种潜在策略。本文将讨论PFC和光催化微生物燃料电池(PMFC)的基本原理、工作原理和结构发展。我们特别关注通过耦合高级氧化过程、合理设计高效电极以及强化传质过程来提高PFC/PMFC废水处理性能的策略。还将详细讨论PFC/PMFC在各个领域的巨大潜力。本文旨在为更好地实施和广泛采用PFC废水处理技术提供一些指导。