Construction of Cu7S4@CuCo2O4 Yolk–Shell Microspheres Composite and Elucidation of Its Enhanced Photocatalytic Activity, Mechanism, and Pathway for Carbamazepine Degradation

Author:

He Zuming123ORCID,Yang Hanpei1,Wong Ngie Hing4,Ernawati Lusi5,Sunarso Jaka4,Huang Zhengyi2,Xia Yongmei6,Wang Yong7,Su Jiangbin3,Fu Xiaofei6,Wu Mi1

Affiliation:

1. Key Laboratory of Integrated Regulation and Resource Development on Shallow Lakes Ministry of Education College of Environment Hohai University Nanjing 210098 P. R. China

2. Huaide School Changzhou University Jingjiang 214500 P. R. China

3. School of Microelectronics and Control Engineering Changzhou University Changzhou 213164 P. R. China

4. Research Centre for Sustainable Technologies Faculty of Engineering Computing and Science Swinburne University of Technology Jalan Simpang Tiga Kuching Sarawak 93350 Malaysia

5. Department of Chemical Engineering Institut Teknologi Kalimantan Balikpapan 76127 Indonesia

6. School of Materials and Engineering Jiangsu University of Technology Changzhou 213001 P. R. China

7. School of Pharmaceutical and Materials Engineering Taizhou University Jiaojiang 318000 P. R. China

Abstract

AbstractWater pollution caused by the massive use of medicines has caused significant environmental problems. This work first reports the synthesis and characterization of the Cu7S4/CuCo2O4 (CS/CCO) yolk–shell microspheres via hydrothermal and annealing methods, and then investigates their photocatalytic performance in removing organic water pollutants. The 10‐CS/CCO composite with yolk–shell microspheres exhibits the highest photodegradation rate of carbamazepine (CBZ), reaching 96.3% within 2 h. The 10‐CS/CCO also demonstrates more than two times higher photodegradation rates than the pure (Cu7S4) CS and (CuCo2O4) CCO. This outstanding photocatalytic performance can be attributed to the unique yolk–shell structure and the Z‐scheme charge transfer pathway, reducing multiple reflections of the acting light. These factors enhance the light absorption efficiency and efficiently transfer photoexcited charge carriers. In‐depth, photocatalytic degradation pathways of CBZ are systematically evaluated via the identification of degradation intermediates with Fukui index calculation. The insights gained from this work can serve as a guideline for developing low‐cost and efficient Z‐scheme photocatalyst composites with the yolk–shell structure.

Funder

National Natural Science Foundation of China

Priority Academic Program Development of Jiangsu Higher Education Institutions

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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