TY - JOUR
T1 - 基于高温化学转化的废旧锂离子电池资源化技术
AU - Lin, Jiao
AU - Liu, Chunwei
AU - Cao, Hongbin
AU - Li, Li
AU - Chen, Renjie
AU - Sun, Zhi
N1 - Publisher Copyright:
© 2018, Editorial Office of Progress in Chemistry. All right reserved.
PY - 2018/9/1
Y1 - 2018/9/1
N2 - Given the environmental risk and valuable metal containing nature of spent lithium-ion batteries, it is of great significance to harmlessly dispose of spent lithium-ion batteries and recycle the valuable resources therein. At present, the spent lithium-ion batteries recycling technology is realized mainly through enhanced chemical conversion under high temperature or normal temperature conditions. High temperature boosts the chemical conversion rate of valuable elements in the spent lithium-ion battery, results in a short flow and releases material dependence. Therefore, high temperature chemical conversion is easy to implement in industry, and the related technologies have become one of the hotspots for the recycling of spent lithium-ion batteries. Based on the chemical conversion differences of various phases, this study systematically analyzes and evaluates the physicochemical mechanisms, technical characteristics, and research status of high temperature chemical reduction, roasting with molten salt, and direct regeneration. The advantages and problems of various technologies are compared. Based on this, it is advised that the future research needs in-depth study of its chemical conversion mechanism and takes into account the short flow clean regeneration of materials. It is necessary to develop a low energy-consuming and environmentally-friendly approach to enable the green treatment and recycling of spent lithium-ion batteries based on the principle of green chemistry.
AB - Given the environmental risk and valuable metal containing nature of spent lithium-ion batteries, it is of great significance to harmlessly dispose of spent lithium-ion batteries and recycle the valuable resources therein. At present, the spent lithium-ion batteries recycling technology is realized mainly through enhanced chemical conversion under high temperature or normal temperature conditions. High temperature boosts the chemical conversion rate of valuable elements in the spent lithium-ion battery, results in a short flow and releases material dependence. Therefore, high temperature chemical conversion is easy to implement in industry, and the related technologies have become one of the hotspots for the recycling of spent lithium-ion batteries. Based on the chemical conversion differences of various phases, this study systematically analyzes and evaluates the physicochemical mechanisms, technical characteristics, and research status of high temperature chemical reduction, roasting with molten salt, and direct regeneration. The advantages and problems of various technologies are compared. Based on this, it is advised that the future research needs in-depth study of its chemical conversion mechanism and takes into account the short flow clean regeneration of materials. It is necessary to develop a low energy-consuming and environmentally-friendly approach to enable the green treatment and recycling of spent lithium-ion batteries based on the principle of green chemistry.
KW - High temperature chemical conversion
KW - Lithium-ion battery
KW - Physico-chemical mechanism
KW - Recycling
KW - Resource regeneration
UR - http://www.scopus.com/inward/record.url?scp=85061988500&partnerID=8YFLogxK
U2 - 10.7536/PC180424
DO - 10.7536/PC180424
M3 - 文献综述
AN - SCOPUS:85061988500
SN - 1005-281X
VL - 30
SP - 1445
EP - 1454
JO - Progress in Chemistry
JF - Progress in Chemistry
IS - 9
ER -