Unusual aliovalent Cd doped γ‐Bi2MoO6 nanomaterial for efficient photocatalytic degradation of sulfamethoxazole and rhodamine B under visible light irradiation

Author:

Zhang Bohang1,Fang Canxiang23,Ning Jing1,Dai Rong1,Liu Yang1,Wu Qiao4,Zhang Fuchun1ORCID,Zhang Weibin5,Dou Shixue6,Liu Xinghui2378ORCID

Affiliation:

1. School of Physics and Electronic Information Yan'an University Yan'an China

2. Science and Technology on Aerospace Chemical Power Laboratory Xiangyang China

3. Hubei Institute of Aerospace Chemotechnology Xiangyang China

4. Network Information Center Yan'an University Yan'an China

5. College of Physics and Electronics Information, Yunnan Key Laboratory of Opto‐Electronic Information Technology, Key Laboratory of Advanced Technique & Preparation for Renewable Energy Materials‐Ministry of Education Yunnan Normal University Kunming China

6. Institute of Energy Materials Science (IEMS) University of Shanghai for Science and Technology Shanghai China

7. Department of Materials Science and Engineering City University of Hong Kong Kowloon Hong Kong China

8. Department of Materials Physics, Saveetha School of Engineering Saveetha Institute of Medical and Technical Sciences (SIMTS) Chennai Tamilnadu India

Abstract

AbstractDue to γ‐Bi2MoO6 (BMO) has attracted considerable attention because of its unique layered perovskite structure and excellent electrical conductivity. However, the easy recombination of electron–hole pairs limits its practical application. To address this issue, we successfully prepared aliovalent Cd2+ doped BMO (Cd‐BMO) by using a simple hydrothermal method for the degradation of the sulfamethoxazole (SMZ) and Rhodamine B (RhB). The result found that the degradation efficiency of Cd‐BMO is significantly higher than that of BMO, despite an increase in the bandgap after the introduction of Cd2+. The superior degradation efficiency of 8% Cd‐BMO, with a smaller particle size and larger specific surface area, can be attributed to its fast charge separation efficiency, low charge transfer resistance, and low rate of electron–hole pair recombination. Repeated and ion spillover experiments prove that 8% Cd‐BMO shows good stability and environmental protection. Theoretical simulation demonstrates that Cd offers electrons to the BMO system due to the decreased binding energy of BMO. The 8% Cd‐BMO sample can provide a suitable electric band edge for generating dominant active radicals during degradation. This work not only provides a potential candidate of 8% Cd‐BMO for practical degradation but also sheds light on the design of superior photocatalysts.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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