Dehui Song, Shuai Chen, Yafeng Li, Lin Wu, Shuo Zheng, Yongjia Li, Lixiang Li, Chengguo Sun, Han Zhang and Baigang An
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The reaction kinetics were further confirmed by the observed Tafel slope of 36.64 mV dec<small><sup>−1</sup></small>, indicating highly efficient charge transfer. Under seawater conditions, the V-MEH variant maintained high performance, with overpotentials as low as 231, 267 and 271 mV at progressively higher current densities (10, 100 and 250 mA cm<small><sup>−2</sup></small>). Additionally, it exhibited exceptional stability, sustaining 224 mA cm<small><sup>−2</sup></small> for 100 hours. Benefiting from the entropy effect, V-MEH enhances OH<small><sup>−</sup></small> adsorption while suppressing Cl<small><sup>−</sup></small> adsorption, thereby achieving high selectivity in seawater and improving corrosion resistance. 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引用次数: 0
摘要
通过海水电解制氢具有大规模制氢的重大前景。然而,开发具有优异析氧选择性和抗氯离子腐蚀能力的高活性阳极催化剂仍然是一个未解决的障碍。本研究提出了一种新型的钒掺杂中熵氢氧化物(V-MEH)催化剂,通过直接的水热方法制备,不含贵金属。系统评价了其在海水电解液中产氢的电化学效率。V-MEH催化剂表现出出色的析氢性能,仅需额外228 mV即可达到10 mA cm−2。观察到的Tafel斜率为36.64 mV dec−1,进一步证实了反应动力学,表明电荷转移效率高。在海水条件下,V-MEH变体保持了高性能,在逐渐增大的电流密度(10、100和250 mA cm−2)下,过电位低至231、267和271 mV。此外,它还表现出优异的稳定性,可维持224 mA cm−2 100小时。V-MEH利用熵效应增强OH -吸附,抑制Cl -吸附,从而在海水中实现高选择性,提高耐蚀性。这种中熵电催化剂在碱性海水环境中表现出卓越的OER性能,将自己定位为迄今为止开发的最有效的金属基系统,代表了实际海水电解的重大进步。
Vanadium-regulated medium-entropy hydroxide catalysts for enhanced activity and corrosion resistance in seawater splitting
Hydrogen production via seawater electrolysis holds significant promise for large-scale hydrogen generation. However, developing highly active anode catalysts with excellent oxygen evolution selectivity and robust resistance to chloride ion corrosion remains an unresolved hurdle. This study presents a novel vanadium-doped medium-entropy hydroxide (V-MEH) catalyst, fabricated via a straightforward hydrothermal approach without noble metals. Its electrochemical efficiency was systematically assessed for hydrogen generation in seawater electrolytes. The V-MEH catalyst demonstrated outstanding hydrogen evolution performance, requiring only extra 228 mV to reach 10 mA cm−2. The reaction kinetics were further confirmed by the observed Tafel slope of 36.64 mV dec−1, indicating highly efficient charge transfer. Under seawater conditions, the V-MEH variant maintained high performance, with overpotentials as low as 231, 267 and 271 mV at progressively higher current densities (10, 100 and 250 mA cm−2). Additionally, it exhibited exceptional stability, sustaining 224 mA cm−2 for 100 hours. Benefiting from the entropy effect, V-MEH enhances OH− adsorption while suppressing Cl− adsorption, thereby achieving high selectivity in seawater and improving corrosion resistance. This medium-entropy electrocatalyst demonstrates exceptional OER performance in alkaline seawater environments, positioning itself as the most effective metal-based system developed to date and representing a major advancement toward practical seawater electrolysis.