Sulfion oxidation assisting self-powered hydrogen production system based on efficient catalysts from spent lithium-ion batteries

Converting spent lithium-ion batteries (LIBs) and industrial wastewater into high-value-added substances by advanced electrocatalytic technology is important for sustainable energy development and environmental protection. Here, we propose a self-powered system using a home-made sulfide fuel cell (S...

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Veröffentlicht in:Proceedings of the National Academy of Sciences - PNAS 2023-12, Vol.120 (52), p.e2317174120-e2317174120
Hauptverfasser: Wang, Boran, Xiao, Xiao, Li, Junfeng, Zhang, Mengtian, Jiao, Miaolun, Zheng, Zhiyang, Li, Tongtong, Zhang, Qi, Zhang, Xuan, Zhou, Guangmin
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Sprache:eng
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Zusammenfassung:Converting spent lithium-ion batteries (LIBs) and industrial wastewater into high-value-added substances by advanced electrocatalytic technology is important for sustainable energy development and environmental protection. Here, we propose a self-powered system using a home-made sulfide fuel cell (SFC) to power a two-electrode electrocatalytic sulfion oxidation reaction (SOR)-assisted hydrogen (H ) production electrolyzer (ESHPE), in which the sulfion-containing wastewater is used as the liquid fuel to produce clean water, sulfur, and hydrogen. The catalysts for the self-powered system are mainly prepared from spent LIBs to reduce the cost, such as the bifunctional Co S catalyst was prepared from spent LiCoO for SOR and hydrogen evolution reaction (HER). The Fe-N-P codoped coral-like carbon nanotube arrays encapsulated Fe P (C-ZIF/sLFP) catalyst was prepared from spent LiFePO for oxygen reduction reaction. The Co S catalyst shows excellent catalytic activities in both SOR and HER, evidenced by the low cell voltage of 0.426 V at 20 mA cm in ESHPE. The SFC with Co S as anode and C-ZIF/sLFP as cathode exhibits an open-circuit voltage of 0.69 V and long discharge stability for 300 h at 20 mA cm . By integrating the SFC and ESHPE, the self-powered system delivers an impressive hydrogen production rate of 0.44 mL cm min . This work constructs a self-powered system with high-performance catalysts prepared from spent LIBs to transform sulfion-containing wastewater into purified water and prepare hydrogen, which is promising to achieve high economic efficiency, environmental remediation, and sustainable development.
ISSN:0027-8424
1091-6490
DOI:10.1073/pnas.2317174120