Cheng Yu, Chen Huanyu, Zhang Lifang, Xu Xinnan, Cheng Huili, Yan Chenglin, Qian Tao
School of Chemistry and Chemical Engineering, Nantong University, Nantong, 226019, P. R. China.
Key Laboratory of Core Technology of High Specific Energy Battery and Key Materials for Petroleum and Chemical Industry, College of Energy, Soochow University, Suzhou, 215006, P. R. China.
Adv Mater. 2024 Apr;36(14):e2313156. doi: 10.1002/adma.202313156. Epub 2024 Jan 28.
The development of efficient and durable high-current-density hydrogen production electrocatalysts is crucial for the large-scale production of green hydrogen and the early realization of hydrogen economic blueprint. Herein, the evolution of grain boundaries through Cu-mediated NiMo bimetallic oxides (MCu-BNiMo), which leading to the high efficiency of electrocatalyst for hydrogen evolution process (HER) in industrial-grade current density, is successfully driven. The optimal MCu-BNiMo demonstrates ultrahigh current density (>2 A cm) at a smaller overpotential in 1 m KOH (572 mV), than that of BNiMo, which does not have lattice strain. Experimental and theoretical calculations reveal that MCu-BNiMo with optimal lattice strain generated more electrophilic Mo sites with partial oxidation owing to accelerated charge transfer from Cu to Mo, which lowers the energy barriers for H* adsorption. These synergistic effects lead to the enhanced HER performance of MCu-BNiMo. More importantly, industrial application of MCu-BNiMo operated in alkaline electrolytic cell is also determined, with its current density reached 0.5 A cm at 2.12 V and 0.1 A cm at 1.79 V, which is nearly five-fold that of the state-of-the-art HER electrocatalyst Pt/C. The strategy provides valuable insights for achieving industrial-scale hydrogen production through a highly efficient HER electrocatalyst.
开发高效耐用的高电流密度析氢电催化剂对于绿色氢气的大规模生产以及氢经济蓝图的早日实现至关重要。在此,通过铜介导的镍钼双金属氧化物(MCu-BNiMo)成功驱动了晶界的演变,这使得电催化剂在工业级电流密度下析氢过程(HER)具有高效率。最佳MCu-BNiMo在1 m KOH中于较小过电位(572 mV)下表现出超高电流密度(>2 A cm²),高于没有晶格应变的BNiMo。实验和理论计算表明,具有最佳晶格应变的MCu-BNiMo由于从铜到钼的加速电荷转移而产生了更多带有部分氧化的亲电钼位点,这降低了H*吸附的能垒。这些协同效应导致MCu-BNiMo的HER性能增强。更重要的是,还确定了MCu-BNiMo在碱性电解槽中的工业应用,其在2.12 V时电流密度达到0.5 A cm²,在1.79 V时达到0.1 A cm²,几乎是目前最先进的HER电催化剂Pt/C的五倍。该策略为通过高效HER电催化剂实现工业规模制氢提供了有价值的见解。