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过渡金属/金属硫化物异质结构助力节能制氢并耦合硫离子降解

Transition Metal/Metal Sulfide Heterostructures Boost Energy Saving Hydrogen Production Coupled with Sulfion Degradation.

作者信息

Feng Yichen, Zhou Min, Yu Guo, Zhang Jianfeng, Cui Lianmeng, Liao Xiaobin, Liu Wei, Luo Ping, Zhao Yan, Wang Zhaoyang

机构信息

State Key Laboratory of Silicate Materials for Architectures, International School of Materials Science and Engineering, Wuhan University of Technology, Wuhan, Hubei, 430070, P. R. China.

School of Chemistry and Materials Science, Hubei Engineering University, No. 272 Traffic Avenue, Xiaogan, Hubei, 432000, P. R. China.

出版信息

Chemistry. 2025 Jun 12;31(33):e202501053. doi: 10.1002/chem.202501053. Epub 2025 May 13.

Abstract

Hydrogen production through the electrochemical hydrogen evolution reaction (HER) provides a promising pathway for sustainable and green energy. Coupling HER with the thermodynamically favorable sulfion oxidation reaction (SOR) can reduce energy consumption and recycle industrial by-product S. However, the development and practical application are hindered by the lack of cost-effective and robust catalysts. Herein, we constructed a bifunctional electrode with rich metal/metal sulfide heterostructures using NiFe foam through stepwise electrodeposition and hydrothermal sulfurization (NiFe-CrCoMo-S). Benefiting from the hydrophilic and sulfur-repellent surface and rich metal/metal sulfide heterostructures, it delivers outstanding SOR and HER performance. The integrated cell, utilizing the NiFe-CrCoMo-S electrode for both the cathode and anode, achieves a remarkable cell voltage of 0.75 V at a current density of 200 mA cm, which is 1.43 V lower than conventional water electrolysis. It demonstrates extraordinary long-term durability over 1100 hours without significant decay, achieving high Faradaic efficiencies (≥99%) and low electricity consumption (1.79 kWh m H) for hydrogen production. This work paves the way for environmentally friendly strategies, combining cost-effective hydrogen production with value-added sulfur recovery, offering a reliable option for bifunctional catalyst design.

摘要

通过电化学析氢反应(HER)制氢为可持续和绿色能源提供了一条有前景的途径。将HER与热力学上有利的硫离子氧化反应(SOR)耦合可以降低能源消耗并回收工业副产品硫。然而,缺乏具有成本效益且坚固耐用的催化剂阻碍了其发展和实际应用。在此,我们通过逐步电沉积和水热硫化法,使用泡沫镍铁构建了一种具有丰富金属/金属硫化物异质结构的双功能电极(NiFe-CrCoMo-S)。受益于亲水性和硫排斥性表面以及丰富的金属/金属硫化物异质结构,它展现出出色的SOR和HER性能。该集成电池使用NiFe-CrCoMo-S电极作为阴极和阳极,在电流密度为200 mA cm时实现了0.75 V的显著电池电压,比传统水电解低1.43 V。它在超过1100小时的时间内表现出非凡的长期耐久性,没有明显衰减,实现了高法拉第效率(≥99%)和低产氢电耗(1.79 kWh m H)。这项工作为环保策略铺平了道路,将具有成本效益的制氢与增值硫回收相结合,为双功能催化剂设计提供了一个可靠的选择。

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