Zang Wenjie, Sun Tao, Yang Tong, Xi Shibo, Waqar Moaz, Kou Zongkui, Lyu Zhiyang, Feng Yuan Ping, Wang John, Pennycook Stephen J
Department of Materials Science and Engineering, Faculty of Engineering, National University of Singapore, Singapore, 117574, Singapore.
Department of Chemistry, Faculty of Science, National University of Singapore, Singapore, 117543, Singapore.
Adv Mater. 2021 Feb;33(8):e2003846. doi: 10.1002/adma.202003846. Epub 2020 Dec 22.
For mass production of high-purity hydrogen fuel by electrochemical water splitting, seawater electrolysis is an attractive alternative to the traditional freshwater electrolysis due to the abundance and low cost of seawater in nature. However, the undesirable chlorine ion oxidation reactions occurring simultaneously with seawater electrolysis greatly hinder the overall performance of seawater electrolysis. To tackle this problem, electrocatalysts of high activity and selectivity with purposely modulated coordination and an alkaline environment are urgently required. Herein, it is demonstrated that atomically dispersed Ni with triple nitrogen coordination (Ni-N ) can achieve efficient hydrogen evolution reaction (HER) performance in alkaline media. The atomically dispersed Ni electrocatalysts exhibit overpotentials as low as 102 and 139 mV at 10 mA cm in alkaline freshwater and seawater electrolytes, respectively, which compare favorably with those previously reported. They also deliver large current densities beyond 200 mA cm at lower overpotentials than Pt/C, as well as show negligible current attenuation over 14 h. The X-ray absorption fine structure (XAFS) experimental analysis and density functional theory (DFT) calculations verify that the Ni-N coordination, which exhibits a lower coordination number than Ni-N , facilitates water dissociation and hydrogen adsorption, and hence enhances the HER activity.
对于通过电化学水分解大规模生产高纯度氢燃料而言,由于海水中丰富且成本低廉,海水电解是传统淡水 电解的一种有吸引力的替代方案。然而,与海水电解同时发生的不良氯离子氧化反应极大地阻碍了海水电解的整体性能。为了解决这个问题,迫切需要具有经过特意调制的配位结构和碱性环境的高活性和选择性的电催化剂。在此,证明了具有三重氮配位(Ni-N₃)的原子分散的镍可以在碱性介质中实现高效析氢反应(HER)性能。原子分散的镍电催化剂在碱性淡水和海水电解质中,在10 mA cm⁻²时过电位分别低至102和139 mV,与先前报道的相比具有优势。它们还能在比Pt/C更低的过电位下提供超过200 mA cm⁻²的大电流密度,并且在14小时内电流衰减可忽略不计。X射线吸收精细结构(XAFS)实验分析和密度泛函理论(DFT)计算证实,与Ni-N₄相比配位数更低的Ni-N₃配位促进了水的解离和氢的吸附,从而提高了析氢反应活性。