析氧
分解水
制氢
海水
材料科学
电解
电解质
碱性水电解
电解水
双金属
氧化物
氢
催化作用
化学工程
吉布斯自由能
煅烧
金属
热液循环
氢燃料
钙钛矿(结构)
无机化学
高温电解
阳极
电镀
阴极保护
电子结构
电催化剂
冶金
作者
Natarajan Logeshwaran,Subramanian Vijayapradeep,Ae Rhan Kim,Sampath Prabhakaran,S. Ramakrishnan,Milan Babu Poudel,Do Hwan Kim,Dong Jin Yoo
标识
DOI:10.1016/j.jechem.2023.06.039
摘要
Scaled-up industrial water electrolysis equipment that can be used with abundant seawater is key for affordable hydrogen production. The search for highly stable, dynamic, and economical electrocatalysts could have a significant impact on hydrogen commercialization. Herein, we prepared energy-efficient, scalable, and engineering electronic structure modulated Mn-Ni bimetal oxides (Mn0.25Ni0.75O) through simple hydrothermal followed by calcination method. As-optimized Mn0.25Ni0.75O displayed enhanced oxygen and hydrogen evolution reaction (OER and HER) performance with overpotentials of 266 and 115 mV at current densities of 10 mA cm−2 in alkaline KOH added seawater electrolyte solution. Additionally, Mn-Ni oxide catalytic benefits were attributed to the calculated electronic configurations and Gibbs free energy for OER, and HER values were estimated using first principles calculations. In real-time practical application, we mimicked industrial operating conditions with modified seawater electrolysis using Mn0.25Ni0.75O∥Mn0.25Ni0.75O under various temperature conditions, which performs superior to the commercial IrO2∥Pt-C couple. These findings demonstrate an inexpensive and facile technique for feasible large-scale hydrogen production.
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