Xu Chenhui, Xiong Furong, Wang Yao, Nai Jianwei, Zhang Wang
College of Materials Science and Engineering, Zhejiang University of Technology, Hangzhou 310014, People's Republic of China.
Nanotechnology. 2023 Apr 11;34(25). doi: 10.1088/1361-6528/acc743.
The integration of ultrathin two-dimensional (2D) semiconductors with other conductive 2D materials to form hybrid electrocatalysts with abundant heterointerfaces can enhance the electrocatalytic activity by facilitating interfacial charge transfer. However, the hybrid electrocatalysts with weak interfacial bonding have limited effect on the electrocatalytic performance because the intrinsic activity of interfacial sites cannot be altered by weak interfacial interactions. As a proof-of-concept, we design ultrathin 2D-2D heterostructures with bridge-bonded Ni-O-Ti ligands based on single-layered TiCTMXene and metal hydroxides, and further reveal the structure-activity correlation between interfacial bonding and electrocatalytic oxygen evolution reaction by combining theoretical and experimental studies. Density functional theory calculations reveal the modulation of the electronic structure of interfacial metal sites after the formation of bridged interfacial Ni-O-Ti bonding. Compared with the hydrogen-bond-linked heterostructure, the ultrathin 2D-2D heterostructure with bridge-bonded Ni-O-Ti ligands shows enhanced intrinsic activity and stability towards electrocatalytic oxygen evolution with a very low overpotential of 205 mV at 10 mA cmand the long-term durability. This work provides a new understanding and approach for the design and development of 2D hybrid catalysts with highly efficient electrocatalytic activity.
将超薄二维(2D)半导体与其他导电二维材料集成以形成具有丰富异质界面的混合电催化剂,可以通过促进界面电荷转移来增强电催化活性。然而,具有弱界面键合的混合电催化剂对电催化性能的影响有限,因为弱界面相互作用无法改变界面位点的本征活性。作为概念验证,我们基于单层TiCTMXene和金属氢氧化物设计了具有桥连Ni-O-Ti配体的超薄2D-2D异质结构,并通过结合理论和实验研究进一步揭示了界面键合与电催化析氧反应之间的结构-活性关系。密度泛函理论计算揭示了桥连界面Ni-O-Ti键形成后界面金属位点电子结构的调制。与氢键连接的异质结构相比,具有桥连Ni-O-Ti配体的超薄2D-2D异质结构对电催化析氧显示出增强的本征活性和稳定性,在10 mA cm下过电位非常低,仅为205 mV,并且具有长期耐久性。这项工作为设计和开发具有高效电催化活性的二维混合催化剂提供了新的理解和方法。