Zhai Wenfang, Chen Ya, Liu Yaoda, Ma Yuanyuan, Vijayakumar Paranthaman, Qin Yuanbin, Qu Yongquan, Dai Zhengfei
State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, Xi'an, 710049, People's Republic of China.
School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an, 710072, People's Republic of China.
Nanomicro Lett. 2024 Feb 14;16(1):115. doi: 10.1007/s40820-024-01331-6.
The metal-lightweighted electrocatalysts for water splitting are highly desired for sustainable and economic hydrogen energy deployments, but challengeable. In this work, a low-content Ni-functionalized approach triggers the high capability of black phosphorene (BP) with hydrogen and oxygen evolution reaction (HER/OER) bifunctionality. Through a facile in situ electro-exfoliation route, the ionized Ni sites are covalently functionalized in BP nanosheets with electron redistribution and controllable metal contents. It is found that the as-fabricated Ni-BP electrocatalysts can drive the water splitting with much enhanced HER and OER activities. In 1.0 M KOH electrolyte, the optimized 1.5 wt% Ni-functionalized BP nanosheets have readily achieved low overpotentials of 136 mV for HER and 230 mV for OER at 10 mA cm. Moreover, the covalently bonding between Ni and P has also strengthened the catalytic stability of the Ni-functionalized BP electrocatalyst, stably delivering the overall water splitting for 50 h at 20 mA cm. Theoretical calculations have revealed that Ni-P covalent binding can regulate the electronic structure and optimize the reaction energy barrier to improve the catalytic activity effectively. This work confirms that Ni-functionalized BP is a suitable candidate for electrocatalytic overall water splitting, and provides effective strategies for constructing metal-lightweighted economic electrocatalysts.
用于水分解的金属轻量化电催化剂对于可持续和经济的氢能部署来说是非常需要的,但具有挑战性。在这项工作中,一种低含量镍功能化方法激发了黑磷烯(BP)在析氢反应和析氧反应(HER/OER)方面的双功能高能力。通过一种简便的原位电剥离路线,离子化的镍位点在BP纳米片中通过电子重新分布和可控的金属含量进行共价功能化。研究发现,所制备的镍-黑磷烯(Ni-BP)电催化剂能够以大大增强的HER和OER活性驱动水分解。在1.0 M KOH电解液中,优化后的1.5 wt%镍功能化BP纳米片在10 mA cm时,HER的过电位低至136 mV,OER的过电位低至230 mV。此外,镍与磷之间的共价键也增强了镍功能化BP电催化剂的催化稳定性,在20 mA cm下能稳定地实现50小时的全水分解。理论计算表明,镍-磷共价结合可以调节电子结构并优化反应能垒,从而有效提高催化活性。这项工作证实了镍功能化BP是电催化全水分解的合适候选材料,并为构建金属轻量化经济电催化剂提供了有效策略。