Ye Cui, Wang Min-Qiang, Bao Shu-Juan, Ye Changhui
College of Materials Science and Engineering , Zhejiang University of Technology , Hangzhou 310014 , China.
Institute for Clean Energy & Advanced Materials, Faculty of Materials and Energy , Southwest University , Chongqing 400715 , China.
ACS Appl Mater Interfaces. 2019 Aug 28;11(34):30887-30893. doi: 10.1021/acsami.9b09144. Epub 2019 Aug 15.
Since the oxygen evolution catalysis process is vital yet arduous in energy conversion and storage devices, it is highly desirous but extremely challenging to engineer earth-abundant, noble-metal-free nanomaterials with superior electrocatalytic activity toward effective oxygen evolution reactions (OERs). Herein, we construct a prismlike cobalt-iron layered double hydroxide (Co-Fe LDH) with a Co/Fe ratio of 3:1 utilizing a facile self-templated strategy. Instead of carbon-species-coupled treatment, we focus on ameliorating the intrinsic properties of LDHs as OER electrocatalysts accompanied by the hierarchical nanoflake shell, well-defined interior cavity, and numerous microporous defects. In contrary to conventional LDHs synthesized via a one-pot method, Co-Fe LDHs fabricated in this work possess a huge specific surface area up to 294.1 m g, which not only provides abundant active sites but also expedites the kinetics of the OER process. The as-prepared Co-Fe LDH electrocatalysts exhibit advanced electrocatalytic performance and a dramatic stability of the OER in an alkaline environment. In particular, the contribution of micropore defects is clearly discussed according to the electrochemical impedance spectroscopy analysis, in which the time constant of the OER at the micropore defect is several orders of magnitude smaller than that at the exterior of Co-Fe LDHs, forcefully verifying the intrinsic catalytic activity enhancement derived from the micropore defects. This work provides a promising model to improve OER electrocatalyst activity via produce defects and research the contribution of micropore defects.
由于析氧催化过程在能量转换和存储装置中至关重要但又十分艰巨,因此设计出对有效析氧反应(OER)具有优异电催化活性的储量丰富、不含贵金属的纳米材料是非常令人期待但极具挑战性的。在此,我们采用简便的自模板策略构建了一种钴铁比为3:1的棱柱状钴铁层状双氢氧化物(Co-Fe LDH)。我们没有采用碳物种耦合处理,而是专注于改善作为OER电催化剂的LDHs的内在性质,其具有分层的纳米片状壳层、明确的内部空腔和大量微孔缺陷。与通过一锅法合成的传统LDHs相反,本工作制备的Co-Fe LDHs具有高达294.1 m²/g的巨大比表面积,这不仅提供了丰富的活性位点,还加快了OER过程的动力学。所制备的Co-Fe LDH电催化剂在碱性环境中表现出先进的电催化性能和显著的OER稳定性。特别是,根据电化学阻抗谱分析清楚地讨论了微孔缺陷的贡献,其中在微孔缺陷处OER的时间常数比Co-Fe LDHs外部的时间常数小几个数量级,有力地验证了由微孔缺陷导致的内在催化活性增强。这项工作提供了一个通过产生缺陷来提高OER电催化剂活性并研究微孔缺陷贡献的有前景的模型。