Fundamentals, status and challenges of direct recycling technologies for lithium ion batteries

H Ji, J Wang, J Ma, HM Cheng, G Zhou - Chemical Society Reviews, 2023‏ - pubs.rsc.org
Advancement in energy storage technologies is closely related to social development.
However, a significant conflict has arisen between the explosive growth in battery demand …

Recycling of lithium‐ion batteries—current state of the art, circular economy, and next generation recycling

J Neumann, M Petranikova, M Meeus… - Advanced energy …, 2022‏ - Wiley Online Library
Being successfully introduced into the market only 30 years ago, lithium‐ion batteries have
become state‐of‐the‐art power sources for portable electronic devices and the most …

Direct recovery: A sustainable recycling technology for spent lithium-ion battery

J Wu, M Zheng, T Liu, Y Wang, Y Liu, J Nai… - Energy Storage …, 2023‏ - Elsevier
The ever-growing amount of lithium (Li)-ion batteries (LIBs) has triggered surging concerns
regarding the supply risk of raw materials for battery manufacturing and environmental …

Carbon neutrality strategies for sustainable batteries: from structure, recycling, and properties to applications

J Lin, X Zhang, E Fan, R Chen, F Wu… - Energy & Environmental …, 2023‏ - pubs.rsc.org
Research on new energy storage technologies has been sparked by the energy crisis,
greenhouse effect, and air pollution, leading to the continuous development and …

Green recycling methods to treat lithium‐ion batteries E‐waste: a circular approach to sustainability

JJ Roy, S Rarotra, V Krikstolaityte… - Advanced …, 2022‏ - Wiley Online Library
E‐waste generated from end‐of‐life spent lithium‐ion batteries (LIBs) is increasing at a rapid
rate owing to the increasing consumption of these batteries in portable electronics, electric …

Selective Extraction of Transition Metals from Spent LiNixCoyMn1−xyO2 Cathode via Regulation of Coordination Environment

X Chang, M Fan, CF Gu, WH He… - Angewandte Chemie …, 2022‏ - Wiley Online Library
The complexity of chemical compounds in lithium‐ion batteries (LIBs) results in great
difficulties in the extraction of multiple transition metals, which have similar physicochemical …

A review on the recycling of spent lithium-ion batteries (LIBs) by the bioleaching approach

JJ Roy, B Cao, S Madhavi - Chemosphere, 2021‏ - Elsevier
This review discusses the latest trend in recovering valuable metals from spent lithium-ion
batteries (LIBs) to meet the technological world's critical metal demands. Spent LIBs are a …

Flash recycling of graphite anodes

W Chen, RV Salvatierra, JT Li, C Kittrell… - Advanced …, 2023‏ - Wiley Online Library
The ever‐increasing production of commercial lithium‐ion batteries (LIBs) will result in a
staggering accumulation of waste when they reach their end of life. A closed‐loop solution …

Advances and challenges in anode graphite recycling from spent lithium-ion batteries

B Niu, J **ao, Z Xu - Journal of Hazardous Materials, 2022‏ - Elsevier
Spent lithium-ion batteries (LIBs) have been one of the fast-growing and largest quantities of
solid waste in the world. Spent graphite anode, accounting for 12–21 wt% of batteries …

[HTML][HTML] A review on carbon materials for electrochemical energy storage applications: State of the art, implementation, and synergy with metallic compounds for …

DR Lobato-Peralta, PU Okoye, C Alegre - Journal of Power Sources, 2024‏ - Elsevier
Carbon materials play a fundamental role in electrochemical energy storage due to their
appealing properties, including low cost, high availability, low environmental impact, surface …