Wang Jie, Sun Yan, Qi Yufeng, Wang Cheng
Tianjin Key Laboratory of Advanced Functional Porous Materials, Institute for New Energy Materials & Low-Carbon Technologies, School of Materials Science and Engineering, Tianjin University of Technology, Tianjin 300384, China.
ACS Appl Mater Interfaces. 2021 Dec 8;13(48):57392-57402. doi: 10.1021/acsami.1c18593. Epub 2021 Nov 22.
Fabricating effective non-precious metal-based catalysts for hydrogen production via electrochemical water splitting is of considerable importance but remains challenging. Transition metal nitrides possessing metallic character and corrosion resistance have been considered as potential replacements for precious metals. However, their activities for water electrolysis are impeded by the strong hydrogen adsorption and low water adsorption energies. Herein, V-doped bimetallic nitrides, V-FeNiN/NiN heterostructure, are synthesized via a hydrothermal-nitridation protocol and used as electrocatalysts for water splitting and urea electrolysis. The V-FeNiN/NiN electrode exhibits superior HER and OER activities, and the overpotentials are 62 and 230 mV to acquire a current density of 10 mA cm, respectively. Moreover, as a bifunctional electrocatalyst for overall water splitting, a two-electrode device needs a voltage of 1.54 V to reach a current density of 10 mA cm. The continuous electrolysis can be run for more than 120 h, surpassing most previously reported electrocatalysts. The excellent performance for water electrolysis is dominantly due to V-doping and interface engineering, which could enhance water adsorption and regulate the adsorption/desorption of intermediates species, thereby accelerating HER and OER kinetic processes. Besides, a urea-assisted two-electrode electrolyzer for electrolytic hydrogen production requires a cell voltage of 1.46 V at 10 mA cm, which is 80 mV lower than that of traditional water electrolysis.
制备用于电化学水分解制氢的高效非贵金属基催化剂具有相当重要的意义,但仍然具有挑战性。具有金属特性和耐腐蚀性的过渡金属氮化物被认为是贵金属的潜在替代品。然而,它们在水电解中的活性受到强氢吸附和低水吸附能的阻碍。在此,通过水热氮化法合成了V掺杂双金属氮化物V-FeNiN/NiN异质结构,并将其用作水分解和尿素电解的电催化剂。V-FeNiN/NiN电极表现出优异的析氢反应(HER)和析氧反应(OER)活性,在电流密度为10 mA cm时,过电位分别为62和230 mV。此外,作为用于全水分解的双功能电催化剂,两电极装置在电流密度为10 mA cm时需要1.54 V的电压。连续电解可以运行超过120小时,超过了大多数先前报道的电催化剂。水电解的优异性能主要归因于V掺杂和界面工程,这可以增强水吸附并调节中间物种的吸附/解吸,从而加速HER和OER动力学过程。此外,用于电解制氢的尿素辅助两电极电解槽在10 mA cm时需要1.46 V的电池电压,比传统水电解低80 mV。