Key Laboratory of Fuel Cell Technology of Guangdong Province, School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou, 510640, China.
Small. 2022 Jul;18(29):e2107739. doi: 10.1002/smll.202107739. Epub 2022 Jun 26.
Water electrolysis has attracted immense research interest, nevertheless the lack of low-cost but efficient bifunctional electrocatalysts for both hydrogen and oxygen evolution reactions greatly hinders its commercial applications. Herein, the controllable synthesis of ultrathin defect-rich layered double hydroxide (LDH) nanoarrays assembled on metal-organic framework (MOF)-derived Co-NC microarrays for boosting overall water splitting is reported. The Co-NC microarrays can not only provide abundant nucleation sites to produce a large number of LDH nuclei for favoring the growth of ultrathin LDHs, but also help to inhibit their tendency to aggregate. Impressively, five types of ultrathin bimetallic LDH nanoarrays can be electrodeposited on the Co-NC microarrays, forming desirable nanoarray-on-macroarray architectures, which show high uniformity with thicknesses from 1.5 to 1.9 nm. As expected, the electrocatalytic performance is significantly enhanced by exploiting the respective advantages of Co-NC microarrays and ultrathin LDH nanoarrays as well as the potential synergies between them. Especially, the optimal Co-NC@Ni Fe-LDH as both cathode and anode can afford the lowest cell voltage of 1.55 V at 10 mA cm , making it one of the best earth-abundant bifunctional electrocatalysts for water electrolysis. This study provides new insights into the rational design of highly-active and low-cost electrocatalysts and facilitates their promising applications in the fields of energy storage and conversion.
水分解引起了广泛的研究兴趣,但缺乏低成本、高效的双功能电催化剂用于析氢和析氧反应,极大地阻碍了其商业应用。在此,报告了在金属有机骨架(MOF)衍生的 Co-NC 微阵列上可控合成超薄缺陷富层状双氢氧化物(LDH)纳米阵列,以促进整体水分解。Co-NC 微阵列不仅可以提供丰富的成核位点,以产生大量 LDH 核,有利于超薄 LDH 的生长,还可以帮助抑制它们聚集的趋势。令人印象深刻的是,可以在 Co-NC 微阵列上电沉积五种类型的超薄双金属 LDH 纳米阵列,形成理想的纳米阵列-宏观阵列结构,具有从 1.5 到 1.9nm 的高均匀性。不出所料,通过利用 Co-NC 微阵列和超薄 LDH 纳米阵列的各自优势以及它们之间的潜在协同作用,电催化性能得到了显著提高。特别是,作为阴极和阳极的最佳 Co-NC@NiFe-LDH 可以提供最低的 1.55V 电池电压,在 10mAcm-2时,它是最好的用于水电解的丰富双功能电催化剂之一。这项研究为设计高活性和低成本电催化剂提供了新的思路,并有助于它们在储能和转换领域的有前景的应用。