Fan Jinchen, Qin Xi, Jiang Wendan, Lu Xiaolei, Song Xueling, Guo Wenyao, Zhu Sheng
School of Materials and Chemistry, University of Shanghai for Science and Technology, Shanghai, China.
Shanghai Key Laboratory of Materials Protection and Advanced Materials in Electric Power, College of Environmental and Chemical Engineering, Shanghai University of Electric Power, Shanghai, China.
Front Chem. 2022 Jul 7;10:951639. doi: 10.3389/fchem.2022.951639. eCollection 2022.
Electrochemical oxygen evolution reaction (OER) always plays an important role in many electrochemical energy storage and conversion systems. Owing to the slow kinetics mainly brought from multiple proton-coupled electron transfer steps, the design and exploit low-cost, highly active, durable OER electrocatalysts are of significant importance. Although the black phosphorus (BP) shows good electrocatalytic OER performance, it still faces the problems of poor intrinsic activity and low stability due to its instability under ambient conditions. The NiFe-LDH was assembled onto the surfaces of exfoliated BP (EBP) nanoflakes to realize the interfacial coupling between them, achieving an effective improvement in electrocatalytic activity and stability. Benefitting from the interfacial P-O bonding, the NiFe-LDH@EBP hybrid shows high OER activity with a low overpotential of ∼240 mV@10 mA cm toward OER under alkaline conditions, as well as the good stability. Density functional theory (DFT) calculations proved that the interface-coupling of NiFe-LDH on BP promotes charge transfer kinetics and balances the adsorption/desorption of reaction intermediates, ultimately imparting excellent OER electrocatalytic activity.
电化学析氧反应(OER)在许多电化学储能和转换系统中一直起着重要作用。由于多质子耦合电子转移步骤导致的动力学缓慢,设计和开发低成本、高活性、耐用的OER电催化剂具有重要意义。尽管黑磷(BP)表现出良好的电催化OER性能,但由于其在环境条件下的不稳定性,它仍然面临本征活性差和稳定性低的问题。将NiFe-LDH组装到剥落的BP(EBP)纳米片表面,以实现它们之间的界面耦合,从而有效提高电催化活性和稳定性。得益于界面P-O键,NiFe-LDH@EBP杂化物在碱性条件下对OER表现出高OER活性,在10 mA cm下过电位约为240 mV,并且具有良好的稳定性。密度泛函理论(DFT)计算证明,BP上NiFe-LDH的界面耦合促进了电荷转移动力学,并平衡了反应中间体的吸附/解吸,最终赋予了优异的OER电催化活性。