Zhang Feifei, Zhang Hang, Salla Manohar, Qin Ning, Gao Mengqi, Ji Ya, Huang Shiqiang, Wu Sisi, Zhang Ruifeng, Lu Zhouguang, Wang Qing
Department of Materials Science and Engineering, Faculty of Engineering, National University of Singapore 117576, Singapore.
Department of Materials Science and Engineering, Southern University of Science and Technology, Shenzhen 518055, P. R. China.
J Am Chem Soc. 2021 Jan 13;143(1):223-231. doi: 10.1021/jacs.0c09510. Epub 2020 Dec 17.
Electrolytic water splitting is an effective approach for H mass production. A conventional water electrolyzer concurrently generates H and O in neighboring electrode compartments separated by a membrane, which brings about compromised purity, energy efficiency, and system durability. On the basis of distinct redox electrochemistry, here, we report a system that enables the decoupling of both the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) from the electrodes to two spatially separated catalyst bed reactors in alkaline solutions. Through a pair of close-loop electrochemical-chemical cycles, the system operates upon 7,8-dihydroxy-2-phenazinesulfonic acid (DHPS) and ferricyanide-mediated HER and OER, respectively, on Pt/Ni(OH) and NiFe(OH) catalysts. Near unity faradaic efficiency and sustained production of hydrogen has been demonstrated at a current density up to 100 mA/cm. The superior reaction kinetics, particularly the HER reaction mechanism of DHPS as a robust electrolyte-borne electron and proton carriers, were scrutinized both computationally and experimentally. We anticipate the system demonstrated here would provide an intriguing alternative to the conventional water electrolytic hydrogen production.
电解水分解是大规模制氢的一种有效方法。传统的水电解槽在由隔膜隔开的相邻电极室中同时产生氢气和氧气,这导致纯度、能源效率和系统耐久性受损。基于独特的氧化还原电化学,在此我们报告一种系统,该系统能使析氢反应(HER)和析氧反应(OER)在碱性溶液中从电极解耦到两个空间分离的催化剂床反应器中。通过一对闭环电化学 - 化学循环,该系统分别在Pt/Ni(OH)和NiFe(OH)催化剂上,依靠7,8 - 二羟基 - 2 - 吩嗪磺酸(DHPS)和铁氰化物介导的HER和OER运行。在高达100 mA/cm²的电流密度下已证明接近单位法拉第效率和持续的氢气产生。从计算和实验两方面仔细研究了优异的反应动力学,特别是DHPS作为一种强大的电解质承载电子和质子载体的HER反应机理。我们预计这里展示的系统将为传统水电解制氢提供一种引人关注的替代方案。