An Integrated Self-Powered Photoelectrocatalytic System for Quadruple-Function Water Remediation: Organic Degradation, Radionuclide Recycling, Energy Recovery, and Toxicity Evaluation

The pervasive prevalence of organic pollutants in water bodies presents major obstacles to traditional uranic recovery methods. Herein, a novel self-powered catalytic system has been developed, featuring a TGCNM heterojunction cathode paired with a carbon/chitin nanofilm nanoarray (CNF) and a silicon PVC photovoltaic (Si PVC) photoanode. This advanced assembly enables the concurrent reduction of U(VI), degradation of pollutants, and generation of electricity. The synergy between the functional groups and redox-active sites on the TGCNM heterojunction promotes efficient adsorption and stepwise reduction of U(VI), granting the system remarkable cycling stability and promising real-world applicability. When exposed to simulated sunlight, the system demonstrates impressive removal rates: 96.7% for UO22+ and 97.7% for bisphenol A (BPA). Additionally, U(VI) removal remains above 90.2% in various organic environments, illustrating strong resistance to interference. Even after five consecutive cycles, the system retains high performance (>93.9% for U(VI) and >94.3% for BPA). Under actual solar irradiation, removal efficiencies exceed 95.8% for both contaminants, underscoring its practical value. This study offers innovative perspectives on resource-focused strategies for remediating radioactive and organic-contaminated waters by integrating energy production and water treatment.

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Publication Details

Journal
International Journal of Molecular Sciences
Published
2026-09-28
DOI
https://doi.org/10.3390/ijms27198680
Primary Topic
Radioactive element chemistry and processing
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article
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An Integrated Self-Powered Photoelectrocatalytic System for Quadruple-Function Water Remediation: Organic Degradation, Radionuclide Recycling, Energy Recovery, and Toxicity Evaluation

Sivakumar Vigneshwaran, Qinhe Pan, Shi‐Cheng Wang
International Journal of Molecular Sciences
Radioactive element chemistry and processing
article

An Integrated Self-Powered Photoelectrocatalytic System for Quadruple-Function Water Remediation: Organic Degradation, Radionuclide Recycling, Energy Recovery, and Toxicity Evaluation

Sivakumar Vigneshwaran, Qinhe Pan, Shi‐Cheng Wang
article en

Abstract

The pervasive prevalence of organic pollutants in water bodies presents major obstacles to traditional uranic recovery methods. Herein, a novel self-powered catalytic system has been developed, featuring a TGCNM heterojunction cathode paired with a carbon/chitin nanofilm nanoarray (CNF) and a silicon PVC photovoltaic (Si PVC) photoanode. This advanced assembly enables the concurrent reduction of U(VI), degradation of pollutants, and generation of electricity. The synergy between the functional groups and redox-active sites on the TGCNM heterojunction promotes efficient adsorption and stepwise reduction of U(VI), granting the system remarkable cycling stability and promising real-world applicability. When exposed to simulated sunlight, the system demonstrates impressive removal rates: 96.7% for UO22+ and 97.7% for bisphenol A (BPA). Additionally, U(VI) removal remains above 90.2% in various organic environments, illustrating strong resistance to interference. Even after five consecutive cycles, the system retains high performance (>93.9% for U(VI) and >94.3% for BPA). Under actual solar irradiation, removal efficiencies exceed 95.8% for both contaminants, underscoring its practical value. This study offers innovative perspectives on resource-focused strategies for remediating radioactive and organic-contaminated waters by integrating energy production and water treatment.

International Journal of Molecular SciencesVol. 27(19)
Jilin University (CN), Hainan University (CN), East China University of Technology (CN), State Key Laboratory of Inorganic Synthesis and Preparative Chemistry
Openalex Percentile: Top 27%
Radioactive element chemistry and processing
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An Integrated Self-Powered Photoelectrocatalytic System for Quadruple-Function Water Remediation: Organic Degradation, Radionuclide Recycling, Energy Recovery, and Toxicity Evaluation — Sivakumar Vigneshwaran, Qinhe Pan, et al. · International Journal of Molecular Sciences (2026) | TGRS Research Map | TGRS