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Waste Management (New York, N.Y.)|July 2, 2023
Closed-loop recycling of spent lithium-ion batteries based on selective sulfidation: An unconventional approachKunhong Gu, Xuesong Gao, Yuxin Chen, et al.Scientific Reports|June 24, 2018
Sulfidation mechanism of ZnO roasted with pyriteWei Liu, Lin Zhu, Junwei Han, et al.Waste Management (New York, N.Y.)|December 10, 2022
Facile separation and regeneration of LiFePO<sub>4</sub> from spent lithium-ion batteries via effective pyrolysis and flotation: An economical and eco-friendly approachXuehu Zhong, Xiaohui Mao, Wenqing Qin, et al.Journal of Environmental Management|May 10, 2024
Selective preparation of lithium carbonate from overhaul slag by high temperature sulfuric acid roasting - Water leachingLiangmin Dong, Fen Jiao, Wei Liu, et al.Waste Management (New York, N.Y.)|April 12, 2020
Thermal degradation behaviors and evolved products analysis of polyester paint and waste enameled wires during pyrolysisWei Liu, Na Wang, Junwei Han, et al.Bioresource Technology|October 3, 2013
Synergistic bioleaching of chalcopyrite and bornite in the presence of Acidithiobacillus ferrooxidansHongbo Zhao, Jun Wang, Minghao Hu, et al.Royal Society Open Science|September 19, 2018
Inhibition mechanism of CaLiuyi Ren, Hang Qiu, Wenqing Qin, et al.Bioresource Technology|December 19, 2012
Bioleaching of chalcopyrite by moderately thermophilic microorganismsWenqing Qin, Congren Yang, Shaoshi Lai, et al.Waste Management (New York, N.Y.)|September 13, 2020
Pneumatic separation for crushed spent lithium-ion batteriesXuehu Zhong, Wei Liu, Junwei Han, et al.Waste Management (New York, N.Y.)|March 12, 2024
Resource recovery and regeneration strategies for spent lithium-ion batteries: Toward sustainable high-value cathode materialsKunhong Gu, Chiharu Tokoro, Yutaro Takaya, et al.Pageof 5