TY - JOUR
T1 - Chloroaluminate Molten Salts for Low-Temperature Electrochemical Recycling of Layered Metal Oxide Cathodes
AU - Xiao, Zhitong
AU - Jia, Yongfeng
AU - Meng, Jiashen
AU - Hong, Xufeng
AU - Zhu, Lujun
AU - He, Mengxue
AU - Shen, Kaier
AU - Song, Huimin
AU - Yan, Yingjing
AU - Ye, Guo
AU - Ma, Yue
AU - Zheng, Chenxi
AU - Pang, Quanquan
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2026/1/13
Y1 - 2026/1/13
N2 - Electrochemical recycling (ECR) offers a promising strategy that harnesses renewable energy to deconstruct spent layered metal oxides (LMOs). However, current ECR approaches are limited to high-temperature operation (up to 750 °C) employing alkali carbonate or chloride melts as electrolytes, leading to high energy consumption for heat input. Here, this study proposes a low-melting-point alkali chloroaluminate melt electrolyte composed of AlCl3–LiCl, enabling ECR electrolysis at a temperature as low as 150 °C. Owing to the high solubility of O2− charge carrier in alkali chloroaluminate melt, LMO cathode undergoes electrochemical reductive de-structuring to yield elemental transition metals and lithium chloride (LiCl). Importantly, two products are insoluble in the Li2O-added melt and can be separated by a facile water leaching treatment. Notably, by incorporating an inert TiN anode, CO2 emission during the electrolysis is eliminated by instead generating O2, further contributing to carbon neutrality. With the low-temperature molten salt electrolyte ECR (LTMS-ECR) approach, a high cobalt recovery rate of 97.3% is achieved for LiCoO2. Technoeconomic analyses project that the LTMS-ECR technology reduces energy consumption and CO2 emission by ≈20% and is nearly ten times more profitable compared to conventional methods. The approach represents a revolutionary alternative for energy-effective, sustainable and economically viable recycling of spent LIBs.
AB - Electrochemical recycling (ECR) offers a promising strategy that harnesses renewable energy to deconstruct spent layered metal oxides (LMOs). However, current ECR approaches are limited to high-temperature operation (up to 750 °C) employing alkali carbonate or chloride melts as electrolytes, leading to high energy consumption for heat input. Here, this study proposes a low-melting-point alkali chloroaluminate melt electrolyte composed of AlCl3–LiCl, enabling ECR electrolysis at a temperature as low as 150 °C. Owing to the high solubility of O2− charge carrier in alkali chloroaluminate melt, LMO cathode undergoes electrochemical reductive de-structuring to yield elemental transition metals and lithium chloride (LiCl). Importantly, two products are insoluble in the Li2O-added melt and can be separated by a facile water leaching treatment. Notably, by incorporating an inert TiN anode, CO2 emission during the electrolysis is eliminated by instead generating O2, further contributing to carbon neutrality. With the low-temperature molten salt electrolyte ECR (LTMS-ECR) approach, a high cobalt recovery rate of 97.3% is achieved for LiCoO2. Technoeconomic analyses project that the LTMS-ECR technology reduces energy consumption and CO2 emission by ≈20% and is nearly ten times more profitable compared to conventional methods. The approach represents a revolutionary alternative for energy-effective, sustainable and economically viable recycling of spent LIBs.
KW - alkali chloroaluminate melt
KW - electrochemical recycling
KW - low operating temperature
KW - molten salt electrolysis
KW - spent LIB cathodes
UR - https://www.scopus.com/pages/publications/105017913199
U2 - 10.1002/adma.202512984
DO - 10.1002/adma.202512984
M3 - 文章
C2 - 41013928
AN - SCOPUS:105017913199
SN - 0935-9648
VL - 38
JO - Advanced Materials
JF - Advanced Materials
IS - 3
M1 - e12984
ER -