College of Mechanics and Materials, Hohai University, Xikang Road #1, Nanjing 210098, PR China.
Key Laboratory of Integrated Regulation and Resource Development of Shallow Lakes, Ministry of Education, College of Environment, Hohai University, Xikang Road #1, Nanjing 210098, PR China.
J Hazard Mater. 2021 Oct 15;420:126607. doi: 10.1016/j.jhazmat.2021.126607. Epub 2021 Jul 8.
Continuous photocatalysis via photo-charging and dark-discharging presents a paradigm shift in conventional photocatalysis with the requirement of continuous illumination to maintain the catalytic activity. This is expected to meet the ever-increasing demand for sustainable development of energy and environment driven by natural day-night cycles. Substantial advances in continuous photocatalysis for various environmental applications under light-dark cycles have been witnessed during the last decade. However, there lacks a systematic and critical review on basic but important information of continuous photocatalysis for environmental remediation, challenging robust scientific progress of this technology towards potential practical use. Here, the general description of continuous photocatalysis involving energy storage mechanisms (hole and electron storage) and characterizations (electron storage behaviors, release behaviors and storage capacity) has been first introduced. Importantly, the remediation performance and mechanism of continuous photocatalysis for environmental applications are qualitatively and quantitatively demonstrated, including chemical pollutant oxidation and reduction, microbial pathogen inactivation, and multifunctional treatment. In addition, key factors influencing its remediation performance are analyzed, for the first time, from both operational and environmental views. The ample opportunities in the field of continuous photocatalysis for sustainable environmental remediation are also pointed out, calling for more efforts to fill current knowledge gaps in the future.
通过光充电和暗放电进行连续光催化,在传统光催化中发生了范式转变,需要连续光照来维持催化活性。这有望满足由自然昼夜循环驱动的能源和环境可持续发展的日益增长的需求。在过去十年中,在光-暗循环下,各种环境应用中的连续光催化取得了实质性进展。然而,对于环境修复用连续光催化的基本但重要信息缺乏系统和批判性的综述,这对该技术向潜在实际应用的稳健科学进展构成了挑战。在这里,首先介绍了涉及储能机制(空穴和电子储能)和特性(电子储能行为、释放行为和储能能力)的连续光催化的一般描述。重要的是,定性和定量地证明了连续光催化在环境应用中的修复性能和机制,包括化学污染物的氧化和还原、微生物病原体的失活以及多功能处理。此外,还首次从操作和环境角度分析了影响其修复性能的关键因素。还指出了在可持续环境修复领域连续光催化的充足机会,呼吁未来做出更多努力来填补当前的知识空白。