Wang Yanyong, Yan Dafeng, El Hankari Samir, Zou Yuqin, Wang Shuangyin
State Key Laboratory of Chem/Bio-Sensing and Chemometrics Provincial Hunan Key Laboratory for Graphene Materials and Devices College of Chemistry and Chemical Engineering Hunan University Changsha 410082 P. R. China.
Adv Sci (Weinh). 2018 May 23;5(8):1800064. doi: 10.1002/advs.201800064. eCollection 2018 Aug.
Layered double hydroxide (LDH)-based materials have attracted widespread attention in various applications due to their unique layered structure with high specific surface area and unique electron distribution, resulting in a good electrocatalytic performance. Moreover, the existence of multiple metal cations invests a flexible tunability in the host layers; the unique intercalation characteristics lead to flexible ion exchange and exfoliation. Thus, their electrocatalytic performance can be tuned by regulating the morphology, composition, intercalation ion, and exfoliation. However, the poor conductivity limits their electrocatalytic performance, which therefore has motivated researchers to combine them with conductive materials to improve their electrocatalytic performance. Another factor hampering their electrocatalytic activity is their large lateral size and the bulk thickness of LDHs. Introducing defects and tuning electronic structure in LDH-based materials are considered to be effective strategies to increase the number of active sites and enhance their intrinsic activity. Given the unique advantages of LDH-based materials, their derivatives have been also used as advanced electrocatalysts for water splitting. Here, recent progress on LDHs and their derivatives as advanced electrocatalysts for water splitting is summarized, current strategies for their designing are proposed, and significant challenges and perspectives of LDHs are discussed.
层状双氢氧化物(LDH)基材料因其具有高比表面积的独特层状结构和独特的电子分布,在各种应用中引起了广泛关注,从而具有良好的电催化性能。此外,多种金属阳离子的存在赋予主体层灵活的可调性;独特的插层特性导致灵活的离子交换和剥离。因此,它们的电催化性能可以通过调节形态、组成、插层离子和剥离来调控。然而,导电性差限制了它们的电催化性能,这促使研究人员将它们与导电材料结合以提高其电催化性能。阻碍其电催化活性的另一个因素是LDHs的大横向尺寸和体厚度。在基于LDH的材料中引入缺陷和调整电子结构被认为是增加活性位点数量和增强其固有活性的有效策略。鉴于基于LDH的材料的独特优势,它们的衍生物也被用作析氢的先进电催化剂。在此,总结了LDHs及其衍生物作为析氢先进电催化剂的最新进展,提出了它们的设计策略,并讨论了LDHs面临的重大挑战和前景。