Zheng Ya-Rong, Hu ShaoJin, Zhang Xiao-Long, Ju Huanxin, Wang Zhenbin, Tan Peng-Ju, Wu Rui, Gao Fei-Yue, Zhuang Taotao, Zheng Xiao, Zhu Junfa, Gao Min-Rui, Yu Shu-Hong
Department of Chemistry, Institute of Biomimetic Materials & Chemistry, Anhui Engineering Laboratory of Biomimetic Materials, Division of Nanomaterials & Chemistry, Hefei National Laboratory for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, Anhui, 230026, P. R. China.
Anhui Province Key Laboratory of Advanced Catalytic Materials and Reaction Engineering, School of Chemistry and Chemical Engineering, Hefei University of Technology, Hefei, Anhui, 230009, P. R. China.
Adv Mater. 2022 Oct;34(43):e2205414. doi: 10.1002/adma.202205414. Epub 2022 Sep 28.
Electrochemical generation of hydrogen peroxide (H O ) by two-electron oxygen reduction offers a green method to mitigate the current dependence on the energy-intensive anthraquinone process, promising its on-site applications. Unfortunately, in alkaline environments, H O is not stable and undergoes rapid decomposition. Making H O in acidic electrolytes can prevent its decomposition, but choices of active, stable, and selective electrocatalysts are significantly limited. Here, the selective and efficient two-electron reduction of oxygen toward H O in acid by a composite catalyst that is composed of black phosphorus (BP) nailed chemically on the metallic cobalt diselenide (CoSe ) surface is reported. It is found that this catalyst exhibits a 91% Faradic efficiency for H O product at an overpotential of 300 mV. Moreover, it can mediate oxygen to H O with a high production rate of ≈1530 mg L h cm in a flow-cell reactor. Spectroscopic and computational studies together uncover a BP-induced surface charge redistribution in CoSe , which leads to a favorable surface electronic structure that weakens the HOO* adsorption, thus enhancing the kinetics toward H O formation.
通过双电子氧还原电化学生成过氧化氢(H₂O₂)提供了一种绿色方法,以减轻当前对能源密集型蒽醌工艺的依赖,有望实现其现场应用。不幸的是,在碱性环境中,H₂O₂不稳定且会迅速分解。在酸性电解质中生成H₂O₂可以防止其分解,但活性、稳定且选择性高的电催化剂的选择非常有限。在此,报道了一种由化学固定在金属二硒化钴(CoSe₂)表面的黑磷(BP)组成的复合催化剂,在酸性条件下将氧气选择性高效地双电子还原为H₂O₂。研究发现,该催化剂在300 mV的过电位下对H₂O₂产物表现出91%的法拉第效率。此外,在流动池反应器中,它可以将氧气介导为H₂O₂,产率高达≈1530 mg L⁻¹ h⁻¹ cm⁻²。光谱和计算研究共同揭示了BP诱导的CoSe₂表面电荷重新分布,这导致了有利于削弱HOO*吸附的表面电子结构,从而增强了生成H₂O₂的动力学。