BiOBr-Based Catalysts for Photocatalytic Nitrogen Fixation: An Overview from the Perspective of Structural Design

IF 6.4 1区 化学 Q1 CHEMISTRY, INORGANIC & NUCLEAR
Shoujian Fu, Razium Ali Soomro, Qisong Shi, Jiajing Wu, Xirui Xi, Hua Wen, Li Guo, Chunming Yang, Danjun Wang
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引用次数: 0

Abstract

Photocatalytic nitrogen reduction (pNRR) offers a carbon-neutral route to ammonia by directly converting solar energy into chemical bonds, presenting a promising alternative to the energy-intensive Haber-Bosch process. However, current progress in pNRR is hindered by the formidable activation barrier of the N≡N triple bond, which severely limits catalytic activity and NH 3 yield. BiOBr-based semiconductors, distinguished by their layered lattice and tunable band structure, exhibit strong visible-light absorption and efficient charge separation, positioning them as compelling platforms for pNRR. This review provides the first comprehensive survey of BiOBr-derived photocatalysts for photocatalytic nitrogen fixation. It begins by introducing the fundamental thermodynamics and reaction pathways of pNRR, followed by an analysis of four key modification strategies employed to enhance BiOBr performance. The review critically assessed the reliability of ammonia quantification protocols, highlighting concerns regarding contamination and artefactual sources.Additionally, three advanced in-situ characterization techniques are discussed for their role in elucidating charge-transfer kinetics. By pinpointing current challenges and outlining future research priorities, this review aims to steer academic exploration, inspire innovative catalyst design, and accelerate the translation of BiOBr photocatalysis toward sustainable, modular ammonia production.
基于bibr的光催化固氮催化剂:从结构设计的角度综述
光催化氮还原(pNRR)通过直接将太阳能转化为化学键,为氨提供了一种碳中性的途径,为能源密集型的Haber-Bosch工艺提供了一种有希望的替代方案。然而,目前pNRR的进展受到N≡N三键强大的激活势垒的阻碍,这严重限制了催化活性和nh3产率。基于bibr的半导体,以其分层晶格和可调谐的带结构而闻名,表现出强烈的可见光吸收和高效的电荷分离,使其成为pNRR的引人注目的平台。本文首次全面综述了bibr衍生光催化固氮催化剂的研究进展。本文首先介绍了pNRR的基本热力学和反应途径,然后分析了提高BiOBr性能的四种关键改性策略。该综述严格评估了氨定量方案的可靠性,强调了对污染和人为来源的关注。此外,讨论了三种先进的原位表征技术在阐明电荷转移动力学中的作用。通过明确当前的挑战和概述未来的研究重点,本综述旨在引导学术探索,激发创新的催化剂设计,并加速BiOBr光催化向可持续的模块化氨生产的转变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Inorganic Chemistry Frontiers
Inorganic Chemistry Frontiers CHEMISTRY, INORGANIC & NUCLEAR-
CiteScore
10.40
自引率
7.10%
发文量
587
审稿时长
1.2 months
期刊介绍: The international, high quality journal for interdisciplinary research between inorganic chemistry and related subjects
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