Enhancing Photocatalytic Hydrogen Evolution by Synergistic Benefits of MXene Cocatalysis and Homo‐Interface Engineering

Author:

Ruan Xiaowen12,Meng Depeng1,Huang Chengxiang1,Xu Minghua1,Wen Xin1,Ba Kaikai3,Singh David J.14,Zhang Haiyan1,Zhang Lei3,Xie Tengfeng3,Zhang Wei1,Zheng Weitao1,Ravi Sai Kishore2ORCID,Cui Xiaoqiang1

Affiliation:

1. State Key Laboratory of Automotive Simulation and Control School of Materials Science and Engineering Key Laboratory of Automobile Materials of MOE Jilin Provincial International Cooperation Key Laboratory of High‐Efficiency Clean Energy Materials Electron Microscopy Center Jilin University Changchun 130012 P. R. China

2. School of Energy and Environment City University of Hong Kong Kowloon, SAR Hong Kong 999077 Hong Kong

3. College of Chemistry Jilin University Changchun 130012 P. R. China

4. Department of Physics and Astronomy and Department of Chemistry University of Missouri Columbia MO 65211 USA

Abstract

AbstractPhotocatalytic water splitting holds great promise as a sustainable and cost‐effectiveness alternative for the production of hydrogen. Nevertheless, the practical implementation of this strategy is hindered by suboptimal visible light utilization and sluggish charge carrier dynamics, leading to low yield. MXene is a promising cocatalyst due to its high conductivity, abundance of active sites, tunable terminal functional groups, and great specific surface area. Homo‐interface has perfect lattice matching and uniform composition, which are more conducive to photogenerated carriers’ separation and migration. In this study, a novel ternary heterogeneous photocatalyst, a‐TiO2/H‐TiO2/Ti3C2 MXene (MXTi), is presented using an electrostatic self‐assembly method. Compared to commercial P25, pristine anatase, and rutile TiO2, as‐prepared MXTi exhibit exceptional photocatalytic hydrogen evolution performance, achieving a rate of 0.387 mmol h−1. The significant improvement is attributable to the synergistic effect of homo‐interface engineering and Ti3C2 MXene, which leads to widened light absorption and efficient carrier transportation. The findings highlight the potential of interface engineering and MXene cocatalyst loading as a proactive approach to enhance the performance of photocatalytic water splitting, paving the way for more sustainable and efficient hydrogen production.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

City University of Hong Kong

Publisher

Wiley

Subject

General Materials Science,General Chemistry

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