Kurz Philipp
Institut für Anorganische und Analytische Chemie, Albert-Ludwigs-Universität Freiburg, Albertstraße 21, 79104, Freiburg, Germany.
Top Curr Chem. 2016;371:49-72. doi: 10.1007/128_2015_634.
The catalytic oxidation of water to molecular oxygen is a key process for the production of solar fuels. Inspired by the biological manganese-based active site for this reaction in the enzyme Photosystem II, researchers have made impressive progress in the last decades regarding the development of synthetic manganese catalysts for water oxidation. For this, it has been especially fruitful to explore the many different types of known manganese oxides MnOx. This chapter first offers an overview of the structural, thermodynamic, and mechanistic aspects of water-oxidation catalysis by MnOx. The different test systems used for catalytic studies are then presented together with general reactivity trends. As a result, it has been possible to identify layered, mixed Mn (III/IV)-oxides as an especially promising class of bio-inspired catalysts and an attempt is made to give structure-based reasons for the good performances of these materials. In the outlook, the challenges of catalyst screenings (and hence the identification of a "best MnOx catalyst") are discussed. There is a great variety of reaction conditions which might be relevant for the application of manganese oxide catalysts in technological solar fuel-producing devices, and thus catalyst improvements are currently still addressing a very large parameter space. Nonetheless, detailed knowledge about the biological catalyst and a solid experimental basis concerning the syntheses and water-oxidation reactivities of MnOx materials have been established in the last decade and thus this research field is well positioned to make important contributions to solar fuel research in the future.
水催化氧化生成分子氧是太阳能燃料生产的关键过程。受酶光系统II中该反应的生物锰基活性位点启发,研究人员在过去几十年里在开发用于水氧化的合成锰催化剂方面取得了令人瞩目的进展。为此,探索多种已知的锰氧化物MnOₓ特别富有成效。本章首先概述了MnOₓ催化水氧化的结构、热力学和机理方面。然后介绍了用于催化研究的不同测试系统以及一般的反应趋势。结果,已确定层状、混合的Mn(III/IV)氧化物是一类特别有前景的仿生催化剂,并尝试从结构角度解释这些材料良好性能的原因。展望部分讨论了催化剂筛选(即确定“最佳MnOₓ催化剂”)面临的挑战。对于锰氧化物催化剂在太阳能燃料生产技术装置中的应用,可能存在各种各样的反应条件,因此目前催化剂的改进仍涉及非常大的参数空间。尽管如此,在过去十年里已经建立了关于生物催化剂的详细知识以及有关MnOₓ材料合成和水氧化反应活性的坚实实验基础,因此该研究领域有望在未来对太阳能燃料研究做出重要贡献。