Zhang Liuyang, Zhang Jianjun, Yu Huogen, Yu Jiaguo
Laboratory of Solar Fuel, Faculty of Materials Science and Chemistry, China University of Geosciences, 388 Lumo Road, Wuhan, 430074, P. R. China.
Adv Mater. 2022 Mar;34(11):e2107668. doi: 10.1002/adma.202107668. Epub 2022 Jan 31.
Photocatalysis is a green technology to use ubiquitous and intermittent sunlight. The emerging S-scheme heterojunction has demonstrated its superiority in photocatalysis. This article covers the state-of-the-art progress and provides new insights into its general designing criteria. It starts with the challenges confronted by single photocatalyst from the perspective of energy dissipation by borrowing the common behaviors in the dye molecule. Subsequently, other problems faced by single photocatalyst are summarized. Then a viable solution for these problems is the construction of heterojunctions. To overcome the problems and mistakes of type-II and Z-scheme heterojunctions, S-scheme heterojunction is proposed and the underlying reaction mechanism is summarized. Afterward, the design principles for S-scheme heterojunction are proposed and four types of S-scheme heterojunctions are suggested. Following this, direct characterization techniques for testifying the charge transfer in S-scheme heterojunction are presented. Finally, different photocatalytic applications of S-scheme heterojunctions are summarized. Specifically, this work endeavors to clarify the critical understanding on curved Fermi level in S-scheme heterojunction interface, which can help strengthen and advance the fundamental theories of photocatalysis. Moreover, the current challenges and prospects of the S-scheme heterojunction photocatalyst are critically discussed.
光催化是一种利用无处不在且间歇性的阳光的绿色技术。新兴的S型异质结已在光催化中展现出其优越性。本文涵盖了最新进展,并对其一般设计标准提供了新的见解。文章首先从能量耗散的角度,借鉴染料分子中的常见行为,探讨了单一光催化剂所面临的挑战。随后,总结了单一光催化剂面临的其他问题。接着,解决这些问题的一个可行方案是构建异质结。为克服II型和Z型异质结存在的问题和不足,提出了S型异质结并总结了其潜在反应机理。之后,提出了S型异质结的设计原则,并给出了四种类型的S型异质结。在此之后,介绍了用于证实S型异质结中电荷转移的直接表征技术。最后,总结了S型异质结的不同光催化应用。具体而言,这项工作致力于阐明对S型异质结界面弯曲费米能级的关键理解,这有助于加强和推进光催化的基础理论。此外,还对S型异质结光催化剂当前面临的挑战和前景进行了批判性讨论。