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Abbott Laboratories lithium ion battery hydrometallurgical recycling
Lithium Ion Battery Hydrometallurgical Recycling, supplied by Abbott Laboratories, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/lithium-ion+batteries/battery+hydrometallurgical+ion+lithium+recycling/10__1002_slash_aesr__202500502-548-29-9
Average 86 stars, based on 1 article reviews
lithium ion battery hydrometallurgical recycling - by Bioz Stars, 2026-09
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Article Title: Mechanochemical Ball Milling Achieves Green and Ultrahighly Efficient Recycling of Lithium-Ion Batteries.
Article Snippet: With the increasing application of lithium-ion batteries (LIBs), the green and efficient recycling of spent LIBs has become a global priority.. However, current techniques share common drawbacks such as low cost-effectiveness, harsh operating conditions, and overlooking of post-treatment environmental hazards.. Herein, we propose a green mechanochemical strategy that utilizes the electrons and reactive oxygen species generated by ball milling to achieve ultrahighly efficient metal recovery and removal of residual organic pollutants.

Article Title: Irreversible Oxygen Redox Enables Lithium Extraction from Ternary Lithium-Ion Battery Cathodes in Water.
Article Snippet: Developing a low-cost and environmentally friendly method for lithium extraction is essential for the efficient recycling of spent lithium-ion battery (LIB) cathodes.. Current technologies, such as solvent extraction/precipitation and electrochemical processes, rely on anionor cation-rich extraction agents and necessitate further purification, leading to high energy consumption and waste pollution.. Here, we demonstrate that applying mechanical treatment on ternary LIB cathodes enables water to extract lithium from the cathode materials under mild conditions, achieving Li extraction efficiencies of 99.4% for LiNi0.8Mn0.1Co0.1O2 (NMC811), 98.9% for LiNi0.9Co0.075Al0.025O2 (NCA), and 97.1% for LiNi0.9Mn0.05Co0.05O2 (NMC955) at 150 °C.

Article Title: Photo- and Electrocatalytic Dual-Layer Cathode Facilitating Zn Peroxide Chemistry in Near-Neutral Zn-Air Batteries.
Article Snippet: Rechargeable zinc-air batteries (ZABs) using near-neutral aqueous electrolytes are gaining significant attention due to their high energy density, low cost, high safety, and the excellent reversibility of the zinc (Zn) anode in mild electrolytes.. However, the sluggish O2/ ZnO2 conversion in the carbon-based cathodes of these batteries leads to a large voltage hysteresis (>600 mV) between charge and discharge.. Metalor metal oxide-based electrocatalysts are rarely used to reduce the overpotentials of this conversion because their presence may trigger undesirable H2O-participated oxygen reduction/evolution reactions, disrupting the pH balance of the electrolyte.

Article Title: Fast-Charging, Binder-Free Lithium Battery Cathodes Enabled via Multidimensional Conductive Networks.
Article Snippet: To meet the growing demands in both energy and power densities of lithium ion batteries, electrode structures must be capable of facile electron and ion transport while minimizing the content of electrochemically inactive components.. Herein, binder-free LiFePO4 (LFP) cathodes are fabricated with a multidimensional conductive architecture that allows for fast-charging capability, reaching a specific capacity of 94 mAh g−1 at 4 C. Such multidimensional networks consist of active material particles wrapped by 1D single-walled carbon nanotubes (CNTs) and bound together using 2D MXene (Ti3C2Tx) nanosheets.. The CNTs form a porous coating layer and improve local electron transport across the LFP surface, while the Ti3C2Tx nanosheets provide simultaneously high electrode integrity and conductive pathways through the bulk of the electrode.

Article Title: Balancing the Components of Biomass and the Reactivity of Pyrolysis Gas: Biomass-Assisted Recycling of Spent LiCoO 2 Batteries.
Article Snippet: Waste biomass is one of the promising feedstocks to supply syngas that can be used as fuels, chemicals, reductants, etc.. However, the relationship between the component of biomass and the constituent of pyrolysis gas remains unclear.. Here, we study the pyrolysis behaviors of various biomasses and reveal the relationship between the biomass components and gas compositions.

Article Title: Reductive Dissolution of NCM Cathode through Anaerobic Respiration by Shewanella putrefaciens .
Article Snippet: The consumption of lithium-ion batteries (LIBs) has considerably increased over the past decade, leading to a rapid increase in the number of spent LIBs.. Exposing spent LIBs to the environment can cause serious environmental harm; however, there is a lack of experimentally obtained information regarding the environmental impacts of abandoned cathode materials.. Here, we report the interactions between Shewanella putrefaciens, a microorganism commonly found in diverse low-oxygen natural settings, and LiNi0.6Co0.2Mn0.2O2 (NCM622) under anaerobic conditions.

Article Title: Recyclable Conjugated Polyelectrolyte Hydrogels for Pseudocapacitor Fabrication.
Article Snippet: In alignment with widespread interest in carbon neutralization and sustainable practices, we disclose that conjugated polyelectrolyte (CPE) hydrogels are a type of recyclable, electrochemically stable, and environmentally friendly pseudocapacitive material for energy storage applications.. By leveraging ionic−electronic coupling in a relatively fluid medium, one finds that hydrogels prepared using a fresh batch of an anionic CPE, namely, Pris-CPE-K, exhibit a specific capacitance of 32.6 ± 6.6 F g−1 in 2 M NaCl and are capable of 80% (26.1 ± 6.5 F g−1) capacitance retention after 100,000 galvanostatic charge−discharge (GCD) cycles at a current density (J) of 10 A g−1.. We note that equilibration under a constant potential prior to GCD analysis leads to the K+ counterions in the CPE exchanging with Na+ and, thus, the relevant active material Pris-CPE-Na.



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