School of Science, Beijing Technology and Business University, Beijing 100048, China.
Department of Engineering, Lancaster University, Lancaster LA1 4YR, UK.
Molecules. 2020 May 14;25(10):2304. doi: 10.3390/molecules25102304.
The importance of advanced energy-conversion devices such as water electrolysis has manifested dramatically over the past few decades because it is the current mainstay for the generation of green energy. Anodic oxygen evolution reaction (OER) in water splitting is one of the biggest obstacles because of its extremely high kinetic barrier. Conventional OER catalysts are mainly noble-metal oxides represented by IrO and RuO, but these compounds tend to have poor sustainability. The attention on Prussian blue (PB) and its analogs (PBA) in the field of energy conversion systems was concentrated on their open-framework structure, as well as its varied composition comprised of Earth-abundant elements. The unique electronic structure of PBA enables its promising catalytic potential, and it can also be converted into many other talented compounds or structures as a precursor. This undoubtedly provides a new approach for the design of green OER catalysts. This article reviews the recent progress of the application of PBA and its derivatives in OER based on in-depth studies of characterization techniques. The structural design, synthetic strategy, and enhanced electrochemical properties are summarized to provide an outlook for its application in the field of OER. Moreover, due to the similarity of the reaction process of photo-driven electrolysis of water and the former one, the application of PBA in photoelectrolysis is also discussed.
在过去的几十年中,先进的能量转换设备(例如水电解)的重要性已经显而易见,因为它是当前绿色能源产生的主要支撑。由于析氧反应(OER)具有极高的动力学障碍,因此在水分解中阳极氧气的产生是最大的障碍之一。传统的 OER 催化剂主要是 IrO 和 RuO 为代表的贵金属氧化物,但这些化合物往往缺乏可持续性。在能量转换系统领域,人们对普鲁士蓝(PB)及其类似物(PBA)的关注集中在其开放框架结构以及由丰富的地球元素组成的各种组成上。PBA 的独特电子结构使其具有有希望的催化潜力,并且它还可以作为前体转化为许多其他有才能的化合物或结构。这无疑为设计绿色 OER 催化剂提供了新途径。本文通过深入研究各种表征技术,综述了 PBA 及其衍生物在 OER 中的应用最新进展。总结了结构设计,合成策略和增强的电化学性能,为其在 OER 领域的应用提供了展望。此外,由于光驱动电解水的反应过程与前者相似,因此还讨论了 PBA 在光电化学中的应用。