Mechanistic analysis of silver leaching from c-Si solar cells using an acetamide-based deep eutectic solvent

An efficient medium for silver (Ag) recovery from end-of-life crystalline silicon (c-Si) solar cells should combine strong Ag reactivity with limited co-extraction of non-target metals and good reusability. In this study, an acetamide-based deep eutectic solvent (DES) composed of choline chloride (ChCl) and acetamide (Ac) (ChCl:Ac = 1:2), with copper chloride (CuCl 2 ) as the oxidant, was developed as an Ag-leaching medium. Under identical 1 h conditions, ChCl:Ac-CuCl 2 produced an Ag-wire mass loss of 53.50 ± 4.55 mg, compared with 30.41 ± 4.29 mg for ChCl:Urea-CuCl 2 , demonstrating stronger Ag-leaching performance. Using Ag wire as a model linear substrate, kinetic analysis showed that the conversion data were better described by the reaction-controlled cylindrical shrinking-core model than by the product-layer diffusion-controlled model. Within 50–80 °C, the apparent activation energy derived from the reaction-controlled model was 55.40 kJ·mol −1 . The apparent reaction order with respect to CuCl 2 decreased from 1.42 in the low-concentration interval to 1.30 in the higher-concentration interval, indicating weakened concentration sensitivity at higher CuCl 2 concentration. Validation using commercial c-Si solar cells showed preferential removal of the front-side Ag grid, whereas the rear-side Al electrode was less affected under the same conditions. The medium also exhibited good recyclability, retaining 97.1% of its initial Ag-wire leaching performance after 32 cycles. These results identify the ChCl:Ac-CuCl 2 system as a reusable medium for selective Ag leaching from c-Si solar cells and clarify how solvent structure, interfacial reaction, and kinetic constraints jointly govern its performance.

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Journal
Solar Energy
Published
2026-09-17
DOI
https://doi.org/10.1016/j.solener.2026.115028
Primary Topic
Photovoltaic Systems and Sustainability
Type
article
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article

Mechanistic analysis of silver leaching from c-Si solar cells using an acetamide-based deep eutectic solvent

Zhun Hu, Xinyu Li, Shanshan Chen, Yuan Hao Wang et al.
Solar Energy
Photovoltaic Systems and Sustainability
article

Mechanistic analysis of silver leaching from c-Si solar cells using an acetamide-based deep eutectic solvent

Zhun Hu, Xinyu Li, Shanshan Chen, Yuan Hao Wang, Lin Lu, Yaxiong Ji
article en

Abstract

An efficient medium for silver (Ag) recovery from end-of-life crystalline silicon (c-Si) solar cells should combine strong Ag reactivity with limited co-extraction of non-target metals and good reusability. In this study, an acetamide-based deep eutectic solvent (DES) composed of choline chloride (ChCl) and acetamide (Ac) (ChCl:Ac = 1:2), with copper chloride (CuCl 2 ) as the oxidant, was developed as an Ag-leaching medium. Under identical 1 h conditions, ChCl:Ac-CuCl 2 produced an Ag-wire mass loss of 53.50 ± 4.55 mg, compared with 30.41 ± 4.29 mg for ChCl:Urea-CuCl 2 , demonstrating stronger Ag-leaching performance. Using Ag wire as a model linear substrate, kinetic analysis showed that the conversion data were better described by the reaction-controlled cylindrical shrinking-core model than by the product-layer diffusion-controlled model. Within 50–80 °C, the apparent activation energy derived from the reaction-controlled model was 55.40 kJ·mol −1 . The apparent reaction order with respect to CuCl 2 decreased from 1.42 in the low-concentration interval to 1.30 in the higher-concentration interval, indicating weakened concentration sensitivity at higher CuCl 2 concentration. Validation using commercial c-Si solar cells showed preferential removal of the front-side Ag grid, whereas the rear-side Al electrode was less affected under the same conditions. The medium also exhibited good recyclability, retaining 97.1% of its initial Ag-wire leaching performance after 32 cycles. These results identify the ChCl:Ac-CuCl 2 system as a reusable medium for selective Ag leaching from c-Si solar cells and clarify how solvent structure, interfacial reaction, and kinetic constraints jointly govern its performance.

Solar EnergyVol. 318
Hong Kong Polytechnic University (HK), Shenzhen Polytechnic University (CN), Xi'an Jiaotong University (CN), Northeastern University (CN), University of Science and Technology Beijing (CN)
Openalex Percentile: Top 19%
Photovoltaic Systems and Sustainability
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