He Fan, Zheng Qiang, Yang Xiaoxuan, Wang Liguang, Zhao Zilin, Xu Yunkai, Hu Lingzi, Kuang Yongbo, Yang Bin, Li Zhongjian, Lei Lecheng, Qiu Ming, Lu Jun, Hou Yang
Key Laboratory of Biomass Chemical Engineering of Ministry of Education, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, 310027, China.
CAS Key Laboratory of Standardization and Measurement for Nanotechnology, CAS Center for Excellence in Nanoscience, National Centre for Nanoscience and Technology, Beijing, 100190, China.
Adv Mater. 2023 Oct;35(41):e2304022. doi: 10.1002/adma.202304022. Epub 2023 Sep 8.
Electrochemical oxygen evolution reaction (OER) kinetics are heavily correlated with hybridization of the transition metal d-orbital and oxygen intermediate p-orbital, which dictates the barriers of intermediate adsorption/desorption on the active sites of catalysts. Herein, a strategy is developed involving strain engineering and coordination regulation to enhance the hybridization of Ni 3d and O 2p orbitals, and the as-synthesized Ni-2,6-naphthalenedicarboxylic acid metal-organic framework (DD-Ni-NDA) nanosheets deliver a low OER overpotential of 260 mV to reach 10 mA cm . By integrating an alkaline anion exchange membrane electrolyzer and Pt/C electrode, 200 and 500 mA cm current densities are reached with cell voltages of 1.6 and 2.1 V, respectively. When loaded on a BiVO photoanode, the nanosheet enables highly active solar-driven water oxygen. Structural characterizations together with theoretical calculations reveal that the spin state of the centre Ni atoms is regulated by the tensile strain and unsaturated coordination defects in DD-Ni-NDA, and such spin regulation facilitates spin-dependent charge transfer of the OER. Molecular orbital hybridization analysis reveals the mechanism of OH* and OOH* adsorption energy regulation by changes in the DD-Ni-NDA spin state, which provides a deeper understanding of the electronic structure design of catalysts for the OER.
电化学析氧反应(OER)动力学与过渡金属d轨道和氧中间体p轨道的杂化密切相关,这决定了中间体在催化剂活性位点上吸附/解吸的势垒。在此,开发了一种涉及应变工程和配位调控的策略,以增强Ni 3d和O 2p轨道的杂化,合成的Ni-2,6-萘二甲酸金属有机框架(DD-Ni-NDA)纳米片具有260 mV的低OER过电位,可达到10 mA cm 。通过集成碱性阴离子交换膜电解槽和Pt/C电极,分别在1.6 V和2.1 V的电池电压下达到了200和500 mA cm的电流密度。当负载在BiVO光阳极上时,该纳米片能够实现高活性的太阳能驱动水氧化。结构表征和理论计算表明,DD-Ni-NDA中中心Ni原子的自旋态受拉伸应变和不饱和配位缺陷的调控,这种自旋调控促进了OER的自旋依赖性电荷转移。分子轨道杂化分析揭示了DD-Ni-NDA自旋态变化对OH和OOH吸附能的调控机制,这为深入理解OER催化剂的电子结构设计提供了依据。