Revisiting MXenes-based Photocatalysis Landscape: Progress, Challenges, and Future Perspectives

IF 13.5 2区 化学 Q1 CHEMISTRY, PHYSICAL 物理化学学报 Pub Date : 2024-08-01 Epub Date: 2023-09-22 DOI:10.3866/PKU.WHXB202306048
Yushan Cai, Fang-Xing Xiao
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Abstract

With the advancement of science and technology, traditional energy sources such as oil and coal have been extensively depleted, leading to the emission of greenhouse gases like CO2. Consequently, issues such as energy scarcity and drastic environmental changes have emerged as pressing concerns that threaten human survival and development. Photocatalysis offers a promising solution by harnessing solar energy for chemical energy conversion, yielding clean and sustainable products. It is widely regarded as an emerging approach to address the energy crisis and environmental challenges. To achieve high-efficiency photocatalytic reactions, the selection of appropriate catalysts and co-catalysts plays a pivotal role. However, conventional photocatalysts such as TiO2, CdS, and g-C3N4 suffer from inherent limitations, including high charge recombination rates, low light utilization efficiency, poor stability, and sluggish charge transfer kinetics, which hinder the enhancement of photocatalytic efficiency. In this context, two-dimensional (2D) materials known as MXenes have gained prominence. These materials exhibit unique structural flexibility, diverse elemental compositions, superior conductivity, excellent carrier mobility, and abundant active sites, making them valuable co-catalysts in photocatalysis. MXenes accelerate interfacial charge transfer kinetics and mitigate charge recombination, enhancing the overall photocatalytic performance. This review provides a comprehensive overview of various methods employed to prepare high-quality MXenes under different conditions, such as water solution etching, water-free etching, and other physical methods. It also explores diverse strategies for constructing MXene-based composite photocatalytic systems, including in situ growth synthesis, in situ oxidation synthesis, and electrostatic self-assembly. Additionally, the review discusses various MXenes-based photosystems, such as MXene/TiO2, MXene/CdS, MXene/g-C3N4, MXene/WO3, and BiOBr/MXene/MMTex, and their applications in photocatalytic processes, including hydrogen production, CO2 reduction, environmental remediation, nitrogen fixation, and sterilization. The critical role of MXenes as reduction co-catalysts in these photoredox catalysis reactions is thoroughly examined, along with an elucidation of the relationship between MXene electronic structure and charge transfer characteristics. Furthermore, the review addresses the challenges related to the stability of MXenes in photocatalytic reactions and offers insights into potential strategies to mitigate this issue. Finally, the development prospects and future challenges of MXene-based composites in the field of photocatalysis are presented, taking into consideration the inherent limitations of MXenes and the requirements for industrialization. It is expected that this review will provide valuable insights into the physicochemical properties of MXenes and inspire innovative approaches to the rational design of diverse MXene-based photosystems for heterogeneous photocatalysis across various applications.
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回顾基于mxenes的光催化领域:进展、挑战和未来展望
摘要随着科学技术的进步,石油、煤炭等传统能源被大量消耗,导致二氧化碳等温室气体的排放。因此,能源短缺和剧烈的环境变化等问题已成为威胁人类生存和发展的紧迫问题。光催化通过利用太阳能进行化学能转换,产生清洁和可持续的产品,提供了一种很有前途的解决方案。它被广泛认为是解决能源危机和环境挑战的新兴方法。为了实现高效的光催化反应,选择合适的催化剂和助催化剂起着关键作用。然而,TiO2、CdS、g-C3N4等传统光催化剂存在电荷重组率高、光利用效率低、稳定性差、电荷转移动力学缓慢等固有局限性,阻碍了光催化效率的提高。在这种背景下,被称为MXenes的二维(2D)材料获得了突出的地位。这些材料具有独特的结构柔韧性、多样的元素组成、优异的导电性、优良的载流子迁移率和丰富的活性位点,是光催化领域有价值的助催化剂。MXenes加速了界面电荷转移动力学,减轻了电荷重组,提高了整体光催化性能。本文综述了在不同条件下制备高质量MXenes的各种方法,如水溶液刻蚀、无水刻蚀和其他物理方法。本文还探讨了构建mxene基复合光催化体系的多种策略,包括原位生长合成、原位氧化合成和静电自组装。此外,综述了MXene/TiO2、MXene/CdS、MXene/g-C3N4、MXene/WO3、BiOBr/MXene/MMTex等MXene光催化体系及其在制氢、CO2还原、环境修复、固氮和灭菌等光催化过程中的应用。研究了MXene作为还原共催化剂在这些光氧化还原催化反应中的关键作用,并阐明了MXene电子结构与电荷转移特性之间的关系。此外,该综述还解决了与MXenes光催化反应稳定性相关的挑战,并提供了缓解这一问题的潜在策略。最后,结合MXenes自身的局限性和产业化的要求,展望了MXenes基复合材料在光催化领域的发展前景和未来面临的挑战。本综述将为MXenes的物理化学性质提供有价值的见解,并为合理设计各种基于MXenes的光系统提供创新的方法,用于各种应用的异相光催化。
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来源期刊
物理化学学报
物理化学学报 化学-物理化学
CiteScore
16.60
自引率
5.50%
发文量
9754
审稿时长
1.2 months
期刊介绍:
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