Cai Zhengyang, Wang Ping, Zhang Jiajia, Chen Aiying, Zhang Jiangwei, Yan Ya, Wang Xianying
Energy Materials Research Center, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai, 200050, P. R. China.
School of Materials Science and Engineering, University of Shanghai for Science and Technology, Shanghai, 200093, P. R. China.
Adv Mater. 2022 Jul;34(26):e2110696. doi: 10.1002/adma.202110696. Epub 2022 May 26.
Nickel-iron-based layered double hydroxides (NiFe LDHs) have attracted tremendous research and industrial interests for oxygen evolution reaction (OER) electrocatalysis. However, methodologies on simultaneous regulation of performance-influencing factors remain scarce and their real synergistic effects are not clear enough. Herein, a versatile polyoxometallic acids (POMs) etching approach is reported to ingeniously reconstruct NiFe LDH, including 3D morphological nanotailoring, Fe and α-Ni(OH) active species reconfiguration, creation of multiple Ni, Fe, and O vacancies, and intercalation of POM polyanionic clusters. The experimental and theoretical data collaboratively unveil that control of the key performance-influencing factors and their multiple synergistic mechanisms dominantly contribute to the step-like OER performance enhancement. The reinforced electrocatalyst is further produced with low cost and high performance up to Ф180 mm in diameter, showing its feasibility and advancement of the promising configuration of NiFe LDH-PMo12(+) II Ni@NiFe LDH(-) for alkaline anion-exchange-membrane electrode stack cells. Furthermore, to mathematically evaluate the evolution, a novel empirical formula is proposed for quantitative identification of structure-activity correlations, which offers an opportunity for first and fast reliability on materials screening.
镍铁基层状双氢氧化物(NiFe LDHs)在析氧反应(OER)电催化方面引起了巨大的研究和工业兴趣。然而,同时调节性能影响因素的方法仍然很少,其真正的协同效应也不够清晰。在此,报道了一种通用的多金属氧酸盐(POMs)蚀刻方法,用于巧妙地重构NiFe LDH,包括3D形态纳米剪裁、Fe和α-Ni(OH)活性物种重构、多个Ni、Fe和O空位的产生以及POM聚阴离子簇的插层。实验和理论数据共同揭示,对关键性能影响因素及其多种协同机制的控制主要有助于逐步提高OER性能。进一步制备了低成本、高性能的增强型电催化剂,直径可达180 mm,显示了其在碱性阴离子交换膜电极堆电池中NiFe LDH-PMo12(+) II Ni@NiFe LDH(-)这种有前景结构的可行性和先进性。此外,为了从数学上评估这种演变,提出了一个新的经验公式,用于定量识别结构-活性相关性,这为材料筛选提供了首次快速可靠的机会。