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用于从可持续氢源进行太阳能制氢的光氧化还原级联催化剂。

Photoredox Cascade Catalysts for Solar Hydrogen Production From Sustainable Hydrogen Sources.

作者信息

Kobayashi Atsushi

机构信息

Department of Chemistry, Faculty of Science, Hokkaido University, North-10 West-8, Kita-ku Sapporo, 060-0810, Japan.

出版信息

ChemSusChem. 2025 Jan 2;18(1):e202400688. doi: 10.1002/cssc.202400688. Epub 2024 Sep 12.

Abstract

Visible-light-driven photocatalytic hydrogen (H) production has been extensively studied as a clean and sustainable energy resource. Although sacrificial electron donors (SEDs) are commonly used to evaluate photocatalytic activity, their irreversible decomposition forces charge separation, which disrupts the inherent dual productivity of photocatalysis, that is, the formation of both the reduction and oxidation products. To achieve highly efficient photoinduced charge separation without SED decomposition, the layer-by-layer assembly of redox-active photosensitizing dyes and electron mediators through Zr-phosphonate bonds has been extensively studied as an artificial mimic of the electron transport chain in natural photosynthesis. This concept paper presents an overview of photoredox cascade catalytic (PRCC) systems comprising multiple Ru(II)-trisbipyridine-type dyes and mediator layers on Pt-loaded TiO nanoparticles for H production from redox reversible electron donors (RREDs). The PRCC structure-activity relationship for photocatalytic H production is briefly discussed in terms of layer thickness, surface structure and modification, and cooperativity with molecular oxidation catalysts. Finally, new insights into the design of efficient dual-production photocatalysts based on the PRCC structure are presented.

摘要

可见光驱动的光催化产氢作为一种清洁且可持续的能源资源已得到广泛研究。尽管牺牲电子供体(SEDs)通常用于评估光催化活性,但其不可逆分解会促使电荷分离,这扰乱了光催化固有的双重生产力,即还原产物和氧化产物的形成。为了在不发生SED分解的情况下实现高效的光致电荷分离,通过锆膦酸酯键逐层组装氧化还原活性光敏染料和电子介质,作为自然光合作用中电子传输链的人工模拟物已得到广泛研究。这篇概念论文概述了光氧化还原级联催化(PRCC)系统,该系统由负载在Pt的TiO纳米颗粒上的多种Ru(II)-三联吡啶型染料和介质层组成,用于从氧化还原可逆电子供体(RREDs)中产氢。从层厚度、表面结构和修饰以及与分子氧化催化剂的协同作用方面简要讨论了光催化产氢的PRCC结构-活性关系。最后,基于PRCC结构提出了高效双产光催化剂设计的新见解。

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