Ge Lin, Shao Binbin, Liang Qinghua, Huang Danlian, Liu Zhifeng, He Qingyun, Wu Ting, Luo Songhao, Pan Yuan, Zhao Chenhui, Huang Jinhui, Hu Yumeng
College of Environmental Science and Engineering, Hunan University and Key Laboratory of Environmental Biology and Pollution Control (Hunan University), Ministry of Education, Changsha 410082, P.R. China.
College of Environmental Science and Engineering, Hunan University and Key Laboratory of Environmental Biology and Pollution Control (Hunan University), Ministry of Education, Changsha 410082, P.R. China.
J Hazard Mater. 2022 Feb 15;424(Pt C):127612. doi: 10.1016/j.jhazmat.2021.127612. Epub 2021 Nov 8.
Recently, persulfate-based advanced oxidation processes (persulfate-AOPs) are booming rapidly due to their promising potential in treating refractory contaminants. As a type of popular two-dimensional material, layered double hydroxides (LDHs) are widely used in energy conversion, medicine, environment remediation and other fields for the advantages of high specific surface area (SSA), good tunability, biocompatibility and facile fabrication. These excellent physicochemical characteristics may enable LDH-based materials to be promising catalysts in persulfate-AOPs. In this work, we make a summary of LDHs and their composites in persulfate-AOPs from different aspects. Firstly, we introduce different structure and important properties of LDH-based materials briefly. Secondly, various LDH-based materials are classified according to the type of foreign materials (metal or carbonaceous materials, mainly). Latterly, we discuss the mechanisms of persulfate activation (including radical pathway and nonradical pathway) by these catalysts in detail, which involve (i) bimetallic synergism for radical generation, (ii) the role of carbonaceous materials in radical generation, (iii) singlet oxygen (O) production and several special nonradical mechanisms. In addition, the catalytic performance of LDH-based catalysts for contaminants are also summarized. Finally, challenges and future prospects of LDH-based composites in environmental remediation are proposed. We expect this review could bring new insights for the development of LDH-based catalyst and exploration of reaction mechanism.
近年来,基于过硫酸盐的高级氧化工艺(过硫酸盐-高级氧化工艺)因其在处理难降解污染物方面的巨大潜力而迅速蓬勃发展。作为一种广受欢迎的二维材料,层状双氢氧化物(LDHs)因其具有高比表面积(SSA)、良好的可调控性、生物相容性和易于制备等优点,被广泛应用于能量转换、医学、环境修复等领域。这些优异的物理化学特性可能使基于LDH的材料成为过硫酸盐-高级氧化工艺中有前景的催化剂。在这项工作中,我们从不同方面对过硫酸盐-高级氧化工艺中LDHs及其复合材料进行了总结。首先,我们简要介绍了基于LDH的材料的不同结构和重要性能。其次,根据外来材料的类型(主要是金属或碳质材料)对各种基于LDH的材料进行了分类。最后,我们详细讨论了这些催化剂对过硫酸盐的活化机制(包括自由基途径和非自由基途径),其中涉及(i)双金属协同作用产生自由基,(ii)碳质材料在自由基产生中的作用,(iii)单线态氧(O)的产生以及几种特殊的非自由基机制。此外,还总结了基于LDH的催化剂对污染物的催化性能。最后,提出了基于LDH的复合材料在环境修复方面的挑战和未来前景。我们期望这篇综述能够为基于LDH的催化剂的开发和反应机理的探索带来新的见解。