Zhao Guoqiang, Li Peng, Cheng Ningyan, Dou Shi Xue, Sun Wenping
School of Materials Science and Engineering, State Key Laboratory of Silicon Materials, Zhejiang University, Hangzhou, 310027, P. R. China.
Institute for Superconducting and Electronic Materials, Australian Institute for Innovative Materials, University of Wollongong, Wollongong, NSW, 2522, Australia.
Adv Mater. 2020 Jun;32(24):e2000872. doi: 10.1002/adma.202000872. Epub 2020 May 4.
Developing efficient electrocatalysts for the oxygen evolution reaction (OER) is highly challenging for hydrogen production from water splitting, due to the high energy barrier for OO bond formation and the restriction of the scaling relation between the multiple reaction intermediates. In order to simultaneously address these concerns, an Ir/Ni(OH) heterostructure with abundant heterointerfaces is deliberately designed as an efficient electrocatalyst system, with Ir nanoparticles (NPs) homogeneously confined on the Ni(OH) nanosheets. The strong electronic interaction and chemical bonding across the interface between the Ir and Ni(OH) can effectively stabilize the metastable electrophilic Ir(V) species, which is vital to boost the formation of OO bonds. Meanwhile, the adsorption of the multiple intermediates is synergistically optimized at the heterointerface, which breaks the restrictive scaling relation and substantially accelerates the OER kinetics. In addition, the severe agglomeration of Ir species is greatly mitigated by the confinement effect, ensuring the structural integrity of the catalyst and the constant exposure of active sites. Owing to its well-defined multifunctional interfaces, the Ir/Ni(OH) heterostructure exhibits exceptional OER activity and durability in alkaline media. The present results highlight the significance of heterostructure interface engineering toward the rational design and development of advanced electrocatalysts for the OER and beyond.
开发用于析氧反应(OER)的高效电催化剂对于通过水分解制氢极具挑战性,这是由于形成OO键的高能垒以及多个反应中间体之间的比例关系限制。为了同时解决这些问题,特意设计了一种具有丰富异质界面的Ir/Ni(OH)异质结构作为高效电催化剂体系,其中Ir纳米颗粒(NPs)均匀地限制在Ni(OH)纳米片上。Ir与Ni(OH)之间界面处的强电子相互作用和化学键合能够有效稳定亚稳态亲电Ir(V)物种,这对于促进OO键的形成至关重要。同时,在异质界面处协同优化了多种中间体的吸附,打破了限制性比例关系并显著加速了OER动力学。此外,Ir物种的严重团聚通过限制效应得到极大缓解,确保了催化剂的结构完整性和活性位点的持续暴露。由于其明确的多功能界面,Ir/Ni(OH)异质结构在碱性介质中表现出优异的OER活性和耐久性。目前的结果突出了异质结构界面工程对于合理设计和开发用于OER及其他领域的先进电催化剂的重要性。