Decatungstate‐Driven Photocatalytic Pathways for Sustainable and Cleaner Recovery of Precious Metals

Author:

Xie Ya1,Zhang Ting1,Guo Hongxi2,Ding Zijuan1,Dong Shuyuan1,Chen Yao1,Zhang Junhui1,Guan Shuhui1,Xu Zhenmin3,Yu Han1,Bian Zhenfeng1

Affiliation:

1. MOE Key Laboratory of Resource Chemistry and Shanghai Key Laboratory of Rare Earth Functional Materials Shanghai Normal University 100 Guilin Road Shanghai 200234 P.R. China

2. Key Lab For Material Chemistry of Energy Conversion and Storage Ministry of Education School of Chemistry and Chemical Engineering and National Anti‐Counterfeit Engineering Research Center Huazhong University of Science and Technology 1037 Luoyu Road Wuhan 430074 P.R. China

3. School of Chemical and Environmental Engineering Shanghai Institute of Technology 100 Haiquan Road Shanghai 201418 P.R. China

Abstract

AbstractThe recovery of precious metals from waste streams is crucial for sustainable resource utilization but remains hindered by traditional methods involving high toxicity, energy consumption, and environmental pollution. Here, we present a photocatalytic strategy employing hydrothermally synthesized decatungstate ([W10O32]4−) homogeneous ion catalysts to achieve simultaneous oxidation and reduction of precious metals under ambient conditions. This innovative approach integrates solvent‐controlled reaction pathways, enabling efficient dissolution and recovery of precious metals from diverse waste sources, including electronic waste (e‐waste), platinum membrane electrodes, and platinum‐containing catalysts. The decatungstate catalyst exhibits exceptional performance, with an apparent quantum yield of 0.027%—nearly double that of commercial TiO2 (0.014%)—and achieves recovery efficiency of 80%–100% for platinum, surpassing 21 tested photocatalysts. The process adheres to a solid‐phase dissolution model and remains against ionic interference. Time‐dependent density functional theory (TD‐DFT) calculations corroborate experimental UV–vis spectra, while electron‐hole pair analyses elucidate atomic and molecular contributions to photocatalytic activity. Density functional theory (DFT) further validates the thermodynamic feasibility of the reaction pathways. By combining high efficiency, ambient operational conditions, and scalability, this work establishes decatungstates as a sustainable benchmark for green precious metal recovery, addressing the limitations of traditional methods and advancing innovation in resource circularity.

Funder

National Key Research and Development Program of China

National Postdoctoral Program for Innovative Talents

Program of Shanghai Academic Research Leader

National Natural Science Foundation of China

Publisher

Wiley

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