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用于水分解的多相光催化剂的最新进展、成果及策略

Recent developments, advances and strategies in heterogeneous photocatalysts for water splitting.

作者信息

Sohail Muhammad, Rauf Sana, Irfan Muhammad, Hayat Asif, Alghamdi Majed M, El-Zahhar Adel A, Ghernaout Djamel, Al-Hadeethi Yas, Lv Weiqiang

机构信息

Huzhou Key Laboratory of Smart and Clean Energy, Yangtze Delta Region Institute (Huzhou), University of Electronic Science and Technology of China Huzhou 313001 P. R. China

College of Physics and Optoelectronic Engineering, Shenzhen University Shenzhen 518060 PR China.

出版信息

Nanoscale Adv. 2024 Jan 3;6(5):1286-1330. doi: 10.1039/d3na00442b. eCollection 2024 Feb 27.

Abstract

Photocatalytic water splitting (PWS) is an up-and-coming technology for generating sustainable fuel using light energy. Significant progress has been made in the developing of PWS innovations over recent years. In addition to various water-splitting (WS) systems, the focus has primarily been on one- and two-steps-excitation WS systems. These systems utilize singular or composite photocatalysts for WS, which is a simple, feasible, and cost-effective method for efficiently converting prevalent green energy into sustainable H energy on a large commercial scale. The proposed principle of charge confinement and transformation should be implemented dynamically by conjugating and stimulating the photocatalytic process while ensuring no unintentional connection at the interface. This study focuses on overall water splitting (OWS) using one/two-steps excitation and various techniques. It also discusses the current advancements in the development of new light-absorbing materials and provides perspectives and approaches for isolating photoinduced charges. This article explores multiple aspects of advancement, encompassing both chemical and physical changes, environmental factors, different photocatalyst types, and distinct parameters affecting PWS. Significant factors for achieving an efficient photocatalytic process under detrimental conditions, (, strong light absorption, and synthesis of structures with a nanometer scale. Future research will focus on developing novel materials, investigating potential synthesis techniques, and improving existing high-energy raw materials. The endeavors aim is to enhance the efficiency of energy conversion, the absorption of radiation, and the coherence of physiochemical processes.

摘要

光催化水分解(PWS)是一项利用光能生成可持续燃料的新兴技术。近年来,PWS创新的发展取得了显著进展。除了各种水分解(WS)系统外,重点主要放在单步和两步激发WS系统上。这些系统利用单一或复合光催化剂进行水分解,这是一种简单、可行且具有成本效益的方法,可在大规模商业规模上有效地将普遍存在的绿色能源转化为可持续的氢能。所提出的电荷限制和转移原理应通过结合和刺激光催化过程来动态实现,同时确保界面处无意外连接。本研究重点关注使用单步/两步激发和各种技术的整体水分解(OWS)。它还讨论了新型光吸收材料开发的当前进展,并提供了分离光生电荷的观点和方法。本文探讨了进展的多个方面,包括化学和物理变化、环境因素、不同类型的光催化剂以及影响PWS的不同参数。在不利条件下实现高效光催化过程的重要因素,(,强光吸收以及纳米级结构的合成。未来的研究将集中在开发新型材料、研究潜在的合成技术以及改进现有的高能原材料。这些努力的目标是提高能量转换效率、辐射吸收以及物理化学过程的连贯性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1b4d/10898449/b414f09f0a83/d3na00442b-f1.jpg

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