Naznin Shaikh, Indrajit Mukhopadhyay and Abhijit Ray
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引用次数: 11
摘要
在酸性条件下实现氢和氧的同步析出反应(HER和OER)是绿色氢生产面临的挑战之一。本文通过S和Se的简单单步热扩散,制备了基于Ni-foam (NF)的ni - sulfide (NiS, NiS2和Ni3S2)和-selenide (NiSe)异质结构的电催化剂。在各种制备的层次结构中,Ni3S2@NiSe/NF对HER的催化活性最好,在电流密度为10和50 mA cm?2,分别。Tafel斜率为74.2 mV / dec?1在0.5 M H2SO4为HER。同样的结构在酸性条件下也表现出显著的OER活性,在50 mA cm?Tafel斜率为68.9 mV / 1。基于密度泛函理论(DFT)的方法表明,Ni3S2@NiSe异质界面在阴极对氢的吸附自由能很低,并且在其界面上具有很强的电子局域化,这有利于阳极的电荷转移动力学,从而改善了缓慢的OER速率。此外,由于Ni d轨道与S和Se p轨道的强烈杂化,破坏了它们的反键特性,使得其具有优异的she性能。
Heterointerfaces of nickel sulphides and selenides on Ni-foam as efficient bifunctional electrocatalysts in acidic environments†
The fulfilment of simultaneous hydrogen and oxygen evolution reactions (HER and OER) in acidic conditions is one of the challenges facing the production of green hydrogen. Herein, robust electrocatalysts using a heterostructure of Ni-sulphide (NiS, NiS2 and Ni3S2) and -selenide (NiSe) supported on Ni-foam (NF) have been developed via the simple single-step thermal diffusion of S and Se. Among the various prepared hierarchical structures, Ni3S2@NiSe/NF shows the best catalytic activity for the HER, with low overpotentials of 103 and 289 mV at current densities of 10 and 50 mA cm?2, respectively. It shows a promising Tafel slope of 74.2 mV dec?1 in 0.5 M H2SO4 for the HER. The same structure also shows remarkable OER activity in acidic conditions, with an overpotential of 0.26 V (vs. RHE) at 50 mA cm?2 and a Tafel slope of 68.9 mV dec?1. The density functional theory (DFT)-based approach reveals that the Ni3S2@NiSe heterointerface exhibits a very low adsorption free energy for hydrogen at the cathode and strong electron localization across its interface, which facilitates the charge-transfer kinetics at the anode to improve the sluggish OER rate. In addition, its excellent HER performance results from the strong hybridization of the Ni d orbitals with the S and Se p orbitals, destabilizing their antibonding characteristics.
期刊介绍:
ACS Central Science publishes significant primary reports on research in chemistry and allied fields where chemical approaches are pivotal. As the first fully open-access journal by the American Chemical Society, it covers compelling and important contributions to the broad chemistry and scientific community. "Central science," a term popularized nearly 40 years ago, emphasizes chemistry's central role in connecting physical and life sciences, and fundamental sciences with applied disciplines like medicine and engineering. The journal focuses on exceptional quality articles, addressing advances in fundamental chemistry and interdisciplinary research.