Wending Gu, D.N. Payne, Shujuan Huang, Binesh Puthen Veettil
Current strategies for silver (Ag) recovery from photovoltaic waste are hampered by complex, costly, and poorly controlled process flows. In this study, we present a novel technology for the targeted separation of Ag from end-of-life silicon solar cells (EoL-SSCs) using a localized electrolyte jet (EJ) recycling system. Under low applied voltage (5 V) in a circulating dilute HNO 3 solution (12 wt%), 90.2 % of the surface-metallized Ag is selectively dissolved within 7 min, and near-complete separation (> 95 %) is achieved after 30 min of treatment. This custom-designed platform, featuring a unique vertical operation mode and configurable parameters (i.e., adjustable cathode geometry and tunable electrolyte flow rate), suppresses Al co-dissolution by >80 % compared with conventional acid leaching. The electric field intensified by the sharp tip effect drives the directional generation of high-valence Ag species, accelerating dissolution kinetics and delivering exceptional current efficiencies (removal: 87.4 %; recovery: 77 %). The resulting Ag + -rich electrolyte is directly utilized in a one-step reverse EJ deposition process to produce Ag coatings with high purity (96 %) and excellent conductivity ( 1.7 × 10 − 8 Ω·m). By integrating selective metal separation with electrochemical additive manufacturing, this strategy offers an economically viable and environmentally sustainable route for the valorization of critical metals from diverse e-waste streams.