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用于高效稳定析氧催化的多孔双金属磷化钴铁纳米泡沫

Porous bimetallic cobalt-iron phosphide nanofoam for efficient and stable oxygen evolution catalysis.

作者信息

Sun Shanfu, Zheng Ming, Cheng Pengfei, Wu Fugui, Xu Luping

机构信息

School of Aerospace Science and Technology, Xidian University, Xi'an 710126, PR China.

School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin 150001, PR China.

出版信息

J Colloid Interface Sci. 2022 Nov 15;626:515-523. doi: 10.1016/j.jcis.2022.06.053. Epub 2022 Jun 16.

Abstract

Developing oxygen evolution reaction (OER) catalysts with high activity and long-term stability is critical to achieving efficient hydrogen production from water electrolysis. Herein, a porous bimetallic cobalt-iron phosphide (CoFe-P) nanofoam is synthesized via a novel one-pot glucose-blowing followed by oxidization and then phosphidization process. The CoFe-P nanofoam presents a porous nanostructure which contributes to contact with electrolytes and release of generated gas during electrocatalytic reactions. As OER catalysts in alkaline, the bimetallic porous CoFe-P nanofoam exhibit a lower overpotential (258 mV@10 mA cm) as well as outstanding stability (70 h@100 mA cm), which surpasses the RuO and is comparable to many high-performance Co and Fe-based catalysts. It is demonstrated that the surface of CoFe-P undergo a reconstruction process and form new high active (CoFe)OOH. Density functional theory (DFT) calculations reveal that the elevated activity is caused by the bimetal Co and Fe optimizing the d-band center (E) energy levels and thus balancing the adsorption-desorption capacities for OER intermediates. This work through constructing porous bimetallic nanofoam offers a feasible strategy to facilitate the reaction activity and prolong the long-term stability of OER.

摘要

开发具有高活性和长期稳定性的析氧反应(OER)催化剂对于实现水电解高效制氢至关重要。在此,通过一种新颖的一锅法葡萄糖发泡,随后进行氧化和磷化过程,合成了一种多孔双金属钴铁磷化物(CoFe-P)纳米泡沫。CoFe-P纳米泡沫呈现出多孔纳米结构,这有助于在电催化反应过程中与电解质接触并释放产生的气体。作为碱性条件下的OER催化剂,双金属多孔CoFe-P纳米泡沫表现出较低的过电位(10 mA cm时为258 mV)以及出色的稳定性(100 mA cm时为70 h),超过了RuO,并且与许多高性能的钴基和铁基催化剂相当。结果表明,CoFe-P的表面经历了重构过程并形成了新的高活性(CoFe)OOH。密度泛函理论(DFT)计算表明,活性的提高是由于双金属Co和Fe优化了d带中心(E)能级,从而平衡了OER中间体的吸附-解吸能力。这项通过构建多孔双金属纳米泡沫的工作为提高反应活性和延长OER的长期稳定性提供了一种可行的策略。

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