Vittorio Scardaci, Stefano Boscarino, Luca Pulvirenti, Giusy Dativo, Francesco Ruffino, Guglielmo G Condorelli, Salvatore Scirè, Roberto Fiorenza, Giuseppe Compagnini
The increasing demand for sustainable technologies and resource efficiency is driving the development of materials that can both mitigate CO2 emissions and recover valuable metals from e-waste. In this work, we report a simple and environmentally friendly approach for fabricating catalytic surfaces based on laser-reduced graphene oxide (rGO) decorated with gold or copper nanoparticles (Au or Cu NPs). The process involves laser reduction of graphene oxide, followed by immersion in aqueous Au3+ or Cu2+ model solutions, simulating metal leachate from an e-waste recovery process. Morphological and chemical analyses (SEM and XPS) confirm the formation of metallic nanoparticles. The resulting metal@rGO surfaces were tested for CO2 photothermo-catalytic conversion under simulated solar irradiation, achieving conversion efficiencies above 40%, with CO and CH4 as the main products. Both catalytic surfaces displayed comparable activity and good stability over three consecutive cycles. This method integrates CO2 conversion with metal recycling, offering a promising route toward circular catalytic materials.