Fu-Chun Pan (17951601)Jun Jia (112173)Feng Gong (621653)Yonghui Liu (336319)Shude Liu (1396489)Seong Chan Jun (561350)Dunmin Lin (3377387)Yuzheng Guo (1473835)Yusuke Yamauchi (1410556)Yu Huo (1687237)
The development of cost-effective electrocatalysts with an optimal surface affinity for intermediates is essential for sustainable hydrogen fuel production, but this remains insufficient. Here we synthesize Ni2P/MoS2-CoMo2S4@C heterometallic electrocatalysts based on the high-nuclearity cluster {Co24(TC4A)6(MoO4)8Cl6}, in which Ni2P nanoparticles were anchored to the surface of the MoS2-CoMo2S4@C nanosheets via strong interfacial interactions. Theoretical calculations revealed that the introduction of Ni2P phases induces significant disturbances in the surface electronic configuration of Ni2P/MoS2-CoMo2S4@C, resulting in more relaxed d–d orbital electron transfers between the metal atoms. Moreover, continuous electron transport was established by the formation of multiple heterojunction interfaces. The optimized Ni2P/MoS2-CoMo2S4@C electrocatalyst exhibited ultralow overpotentials of 198 and 73 mV for oxygen and hydrogen evolution reactions, respectively, in alkaline media, at 10 mA cm–2. The alkali electrolyzer constructed using Ni2P/MoS2-CoMo2S4@C required a cell voltage of only 1.45 V (10 mA cm–2) to drive overall water splitting with excellent long-term stability.
Fu-Chun PanJun JiaFeng GongYonghui LiuShude LiuSeong Chan JunDunmin LinYuzheng GuoYusuke YamauchiYu Huo
Yi-Qi TianEr-Meng HanBo WanWei‐Dong YuMing-Zhao ChenJun YanXiao‐Yi YiChao Liu
Yi-Qi Tian (11752479)Er-Meng Han (11888425)Bo Wan (212083)Wei-Dong Yu (696883)Ming-Zhao Chen (12935437)Jun Yan (28467)Xiao-Yi Yi (1911823)Chao Liu (43092)
Guodong ShiYunlong XieLili DuZixiong FanXiaojie ChenXinliang FuWangjing XieMei WangMingjian Yuan
Yuying YangFu-Chun PanJialing LiFeng GongJisong HuQiaoji ZhengDunmin LinYu Huo