Photoelectron “Bridge” in Van Der Waals Heterojunction for Enhanced Photocatalytic CO2 Conversion Under Visible Light

Author:

Ismail Pir Muhammad12ORCID,Ali Sajjad1ORCID,Ali Sharafat2,Li Jiahao3,Liu Min4,Yan Dong5,Raziq Fazal12,Wahid Fazli1,Li Guojing1,Yuan Shuhua1,Wu Xiaoqiang6,Yi Jiabao7,Chen Jun Song5,Wang Qingyuan6,Zhong Li4,Yang Ye3,Xia Pengfei1,Qiao Liang12ORCID

Affiliation:

1. Yangtze Delta Region Institute (Huzhou) University of Electronic Science and Technology Huzhou 313001 P. R. China

2. School of Physics University of Electronic Science and Technology of China Chengdu 610054 P. R. China

3. State Key Laboratory of Physical Chemistry of Solid Surfaces College of Chemistry and Chemical Engineering Xiamen University Xiamen Fujian 361005 P. R. China

4. SEU‐FEI Nano‐Pico Center Key Laboratory of MEMS of Ministry of Education Southeast University Nanjing 210096 P. R. China

5. School of Materials and Energy University of Electronic Science and Technology of China Chengdu 610054 P. R. China

6. School of Mechanical Engineering Chengdu University Chengdu 610106 P. R. China

7. Global Innovative Centre for Advanced Nanomaterials School of Engineering The University of Newcastle Callaghan NSW 2308 Australia

Abstract

AbstractConstructing Van der Waals heterojunction is a crucial strategy to achieve excellent photocatalytic activity. However, in most Van der Waals heterojunctions synthesized by ex situ assembly, electron transfer encounters huge hindrances at the interface between the two components due to the large spacing and potential barrier. Herein, a phosphate‐bridged Van der Waals heterojunction of cobalt phthalocyanine (CoPc)/tungsten disulfide (WS2) bridged by phosphate (xCoPc‐nPO4‐WS2) is designed and prepared by the traditional wet chemistry method. By introducing a small phosphate molecule into the interface of CoPc and WS2, creates an electron “bridge”, resulting in a compact combination and eliminating the space barrier. Therefore, the phosphate (PO4) bridge can serve as an efficient electron transfer channel in heterojunction and can efficiently transmit photoelectrons from WS2 to CoPc under excited states. These excited photoelectrons are captured by the catalytic central Co2+ in CoPc and subsequently convert CO2 molecules into CO and CH4 products, achieving 17‐fold enhancement on the 3CoPc‐0.6PO4‐WS2 sample compared to that of pure WS2. Introducing a small molecule “bridge” to create an electron transfer channel provides a new perspective in designing efficient photocatalysts for photocatalytic CO2 reduction into valuable products.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Natural Science Foundation of Chongqing

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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