Yu Xueqian, Gong Xuhe, Qiao Haiqing, Liu Xiaobing, Ma Chao, Xiao Ruijuan, Li Ran, Zhang Tao
School of Materials Science and Engineering, Key Laboratory of Aerospace Materials and Performance (Ministry of Education), Beihang University, Beijing, 100191, China.
College of Materials Science and Engineering, Hunan University, Changsha, Hunan, 410082, China.
Small Methods. 2024 Oct;8(10):e2400793. doi: 10.1002/smtd.202400793. Epub 2024 Jul 31.
Developing high-efficiency durable electrocatalysts in wide pH range for water splitting is significant for environmentally-friendly synthesis of renewable hydrogen energy. Herein, a facile method by dealloying designable multicomponent metallic glass precursors is reported to synthesize amorphous-crystalline heterostructured nanoporous high-entropy alloys (AC-HEAs) of CuAgAuPtPd, CuAgAuIrRu, and CuAgAuPtPdIrRu, heaped up by nanocrystalline particles with an average size of 2-3 nm and the amorphous glued phase. The synthesized AC-HEA-CuAgAuPtPd owns highly catalytic performances for hydrogen evolution reaction (HER), with 9.5 and 20 mV to reach 10 mA·cm in 0.5 m HSO and 1.0 m KOH, and AC-HEA-CuAgAuIrRu delivers 208 and 200 mV for oxygen evolution reaction (OER). Moreover, a two-electrode electrolyzer made of the AC-HEA-CuAgAuIrRu bifunctional electrodes exhibit a low cell voltage of 1.48 and 1.49 V in the acidic and alkaline conditions at 10 mA·cm for overall water splitting. Combining the enhanced catalytic activities from nanoscale amorphous structure and atom-level synergistic catalyst in AC-HEAs provides an effective pathway for pH-universal electrocatalysts of water splitting.
开发在宽pH范围内用于水分解的高效耐用电催化剂对于可再生氢能的环境友好合成具有重要意义。在此,报道了一种通过脱合金化可设计的多组分金属玻璃前驱体的简便方法,以合成CuAgAuPtPd、CuAgAuIrRu和CuAgAuPtPdIrRu的非晶-晶体异质结构纳米多孔高熵合金(AC-HEAs),这些合金由平均尺寸为2-3nm的纳米晶体颗粒和非晶态粘结相堆积而成。合成的AC-HEA-CuAgAuPtPd对析氢反应(HER)具有高度催化性能,在0.5m HSO和1.0m KOH中分别需要9.5和20mV才能达到10mA·cm,而AC-HEA-CuAgAuIrRu对析氧反应(OER)的过电位为208和200mV。此外,由AC-HEA-CuAgAuIrRu双功能电极制成的两电极电解槽在酸性和碱性条件下,在10mA·cm下进行全水分解时,电池电压低至1.48和1.49V。AC-HEAs中纳米级非晶结构和原子级协同催化剂的增强催化活性相结合,为pH通用的水分解电催化剂提供了一条有效途径。