Zn‐Bi Catalytic Pair Enables Selective Superoxide Radical Generation for Simultaneous Removal of Organic Pollutants and Heavy Metals

T Tao Zhang Y Yaoqi Liu Y Yihuai Zhang (MOE Key Laboratory of Pollution Processes and Environmental Criteria Tianjin Key Laboratory of Environmental Remediation and Pollution Control College of Environmental Science and Engineering Nankai University Tianjin 300350 P. R. China) P Pengfei Wang (Key Laboratory of Photochemical Conversion and Optoelectronic Materials) S Shuai Yue (Ministry of Education Key Laboratory of Pollution Processes and Environmental Criteria, College of Environmental Science and Engineering, Nankai University) T Tian Fu Z Zhiyong Zhao (Ministry of Education Key Laboratory of Pollution Processes and Environmental Criteria, College of Environmental Science and Engineering, Nankai University) S Sihui Zhan (Key Laboratory of Pollution Processes and Environmental Criteria (Ministry of Education), Carbon Neutrality Interdisciplinary Science Centre/College of Environmental Science and Engineering, Nankai University)

Abstract

Abstract Manipulating exciton dissociation and charge‐carrier transfer processes to selectively generate redox‐capable superoxide (O 2 •− ) for the removal of antibiotic‐heavy metal‐combined pollutants is challenging. To address this issue, a Zn‐Bi catalytic pair with a dual d 10 electronic configuration is constructed. The incorporation of Zn atoms into the lattice results in the formation of a Zn‐O v ‐Bi defect structure, thereby enhancing the built‐in electric field by 5.1 times. This synergistically promotes exciton dissociation at oxygen vacancies and the directional migration of carriers. This strategy achieves an excellent charge mobility (3.76 ps) and selective activation of O 2 to O 2 •− (selectivity: 86.6%, 2.01 mmol L −1 h −1 , an increase of 2.57 times). Owing to the unique charge separation mechanism, ZBOB performs excellently in the treatment of complex environmental pollutants, with simultaneous removal rates of ciprofloxacin and Cr(VI) reaching 0.55 and 0.41 min −1 , respectively, which are four and three times higher than those of the unmodified catalyst, respectively. The catalyst exhibits excellent cycling performance and stability for the simultaneous removal of ciprofloxacin and Cr(VI). These findings highlight the mechanisms underlying the charge transfer and selective generation of free radicals and provide valuable insights for the design of more efficient photocatalysts.

Article Details

Volume / Issue Vol. 37, Issue 45
Published November 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

T

Tao Zhang

Y

Yaoqi Liu

Y

Yihuai Zhang

MOE Key Laboratory of Pollution Processes and Environmental Criteria Tianjin Key Laboratory of Environmental Remediation and Pollution Control College of Environmental Science and Engineering Nankai University Tianjin 300350 P. R. China

P

Pengfei Wang

Key Laboratory of Photochemical Conversion and Optoelectronic Materials

S

Shuai Yue

Ministry of Education Key Laboratory of Pollution Processes and Environmental Criteria, College of Environmental Science and Engineering, Nankai University

T

Tian Fu

Z

Zhiyong Zhao

Ministry of Education Key Laboratory of Pollution Processes and Environmental Criteria, College of Environmental Science and Engineering, Nankai University

S

Sihui Zhan

Key Laboratory of Pollution Processes and Environmental Criteria (Ministry of Education), Carbon Neutrality Interdisciplinary Science Centre/College of Environmental Science and Engineering, Nankai University