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如何构建普鲁士蓝基水氧化催化组装体:常见趋势和策略。

How to Build Prussian Blue Based Water Oxidation Catalytic Assemblies: Common Trends and Strategies.

机构信息

Institute of Materials Science and Nanotechnology, UNAM-National Nanotechnology Research Center, Bilkent University, Ankara, 06800, Turkey.

NANOTAM-Nanotechnology Research Center, Department of Electrical and Electronics Engineering, Department of Physics, Bilkent University, Ankara, 06800, Turkey.

出版信息

Chemistry. 2021 Feb 19;27(11):3638-3649. doi: 10.1002/chem.202004091. Epub 2021 Jan 25.

Abstract

Prussian blue (PB) and its analogues (PBAs) have at least a three-century-long history in coordination chemistry. Recently, cobalt-based PBAs have been acknowledged as efficient and robust water oxidation catalysts. Given the flexibility in their synthesis, the structure and morphology of cobalt-based PBAs have been modified for enhanced catalytic activity under electrochemical (EC), photocatalytic (PC), and photoelectrochemical (PEC) conditions. Here, in this review, the work on cobalt-based PBAs is presented in four sections: i) electrocatalytic water oxidation with bare PBAs, ii) photocatalytic processes in the presence of a photosensitizer (PS), iii) photoelectrochemical water oxidation by coupling PBAs to proper semiconductors (SCs), and iv) the utilization of PBA-PS assemblies coated on SCs for the dye-sensitized photoelectrochemical water oxidation. This review will guide readers through the structure and catalytic activity relationship in cobalt-based PBAs by describing the role of each structural component. Furthermore, this review aims to provide insight into common strategies to enhance the catalytic activity of PBAs.

摘要

普鲁士蓝(PB)及其类似物(PBAs)在配位化学中至少有三个世纪的历史。最近,基于钴的 PBAs 已被公认为高效且稳健的水氧化催化剂。鉴于其合成的灵活性,已经对基于钴的 PBAs 的结构和形态进行了修饰,以在电化学(EC)、光催化(PC)和光电化学(PEC)条件下提高催化活性。在这里,在这篇综述中,将基于钴的 PBAs 的工作分为四个部分进行介绍:i)裸 PBAs 的电催化水氧化,ii)存在光敏剂(PS)时的光催化过程,iii)通过将 PBAs 与合适的半导体(SCs)耦合进行光电化学水氧化,iv)将 PS 组装在 SCs 上的 PBA-PS 用于染料敏化光电化学水氧化。通过描述每个结构组件的作用,本综述将引导读者了解基于钴的 PBAs 的结构和催化活性关系。此外,本综述旨在提供对增强 PBAs 催化活性的常见策略的深入了解。

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