Recycling of spent lithium-ion batteries : processing methods and environmental impacts /: processing methods and environmental impacts. (2019)
- Record Type:
- Book
- Title:
- Recycling of spent lithium-ion batteries : processing methods and environmental impacts /: processing methods and environmental impacts. (2019)
- Main Title:
- Recycling of spent lithium-ion batteries : processing methods and environmental impacts
- Further Information:
- Note: Liang An, editor.
- Other Names:
- An, Liang
- Contents:
- Intro; Preface; Contents; Recycling Technology and Principle of Spent Lithium-Ion Battery; 1 Introduction; 2 Environmental Risk of Spent Lithium-Ion Battery; 3 Treatment of Spent Lithium-Ion Battery; 3.1 Separation of Electrode Materials for Spent Lithium-Ion Batteries; 3.2 High-Value Refining Technology; 4 Cascade Utilization of Spent LIBs; References; Hydrometallurgically Recycling Spent Lithium-Ion Batteries; 1 Introduction; 2 Leaching; 2.1 Leaching Mechanism; 2.2 Inorganic Acid Leaching; 2.3 H2SO4 Leaching; 2.4 HCl Leaching; 2.5 Other Inorganic Acid Leaching; 2.6 Organic Acid Leaching 2.7 Alkaline Leaching3 Purification and Recovery; 3.1 Solvent Extraction; 3.2 Chemical Precipitation and Electrodeposition; 3.3 Regeneration; References; Pyrometallurgical Routes for the Recycling of Spent Lithium-Ion Batteries; 1 Introduction; 2 Key Components of LIBs; 3 Calcination and Roasting; 3.1 Calcination; 3.2 Roasting; 4 Oxide Reduction and Smelting; 4.1 Oxide Reduction; 4.2 Smelting; 5 Metal Refining; 5.1 Metal-Slag Process; 5.2 Metal-Metal Process; 5.3 Metal-gas Process; 6 Regeneration of Cathode Materials; 7 Furnaces; 8 Conclusions; References Bio-hydrometallurgically Treatment of Spent Lithium-Ion Batteries1 Introduction; 2 Mechanisms of Bio-Hydrometallurgy; 3 Impacts on Recovery Efficiency; 4 Pros and Cons of Bio-Hydrometallurgy; 5 Summary and Outlook; References; Hydrometallurgical Processes for Valuable Metals Recycling from Spent Lithium-Ion Batteries; 1 Introduction; 2Intro; Preface; Contents; Recycling Technology and Principle of Spent Lithium-Ion Battery; 1 Introduction; 2 Environmental Risk of Spent Lithium-Ion Battery; 3 Treatment of Spent Lithium-Ion Battery; 3.1 Separation of Electrode Materials for Spent Lithium-Ion Batteries; 3.2 High-Value Refining Technology; 4 Cascade Utilization of Spent LIBs; References; Hydrometallurgically Recycling Spent Lithium-Ion Batteries; 1 Introduction; 2 Leaching; 2.1 Leaching Mechanism; 2.2 Inorganic Acid Leaching; 2.3 H2SO4 Leaching; 2.4 HCl Leaching; 2.5 Other Inorganic Acid Leaching; 2.6 Organic Acid Leaching 2.7 Alkaline Leaching3 Purification and Recovery; 3.1 Solvent Extraction; 3.2 Chemical Precipitation and Electrodeposition; 3.3 Regeneration; References; Pyrometallurgical Routes for the Recycling of Spent Lithium-Ion Batteries; 1 Introduction; 2 Key Components of LIBs; 3 Calcination and Roasting; 3.1 Calcination; 3.2 Roasting; 4 Oxide Reduction and Smelting; 4.1 Oxide Reduction; 4.2 Smelting; 5 Metal Refining; 5.1 Metal-Slag Process; 5.2 Metal-Metal Process; 5.3 Metal-gas Process; 6 Regeneration of Cathode Materials; 7 Furnaces; 8 Conclusions; References Bio-hydrometallurgically Treatment of Spent Lithium-Ion Batteries1 Introduction; 2 Mechanisms of Bio-Hydrometallurgy; 3 Impacts on Recovery Efficiency; 4 Pros and Cons of Bio-Hydrometallurgy; 5 Summary and Outlook; References; Hydrometallurgical Processes for Valuable Metals Recycling from Spent Lithium-Ion Batteries; 1 Introduction; 2 Leaching Processes; 2.1 Chemical Leaching; 2.2 Bioleaching Process; 3 Separation and Recovery Processes; 3.1 Chemical Precipitation; 3.2 Solvent Extraction; 3.3 Other Separation Methods; 4 Regeneration of Cathode Materials 4.1 Re-Preparation of Cathode Materials by Co-precipitation Method4.2 Re-Preparation of Cathode Materials by Sol-Gel Method; 4.3 Direct Regeneration of Cathode Materials; 4.4 Discussion of Current Regeneration Processes; 5 Conclusions; References; High Value-Added Products From Recycling of Spent Lithium-Ion Batteries; 1 Introduction; 2 Pure Metals and Metal Compounds; 2.1 Pure Metals; 2.2 Metal Compounds; 3 Electrode Materials; 3.1 LiCoO2 Cathode Material; 3.2 Li(Co-Mn-Ni)O2 Cathode; 3.3 LiFePO4 Cathode; 4 Other Functional Materials; 4.1 Magnetic Materials; 4.2 Electrocatalytic Materials 4.3 Photocatalytic Materials4.4 Adsorbents; 5 Summary and Outlook; References; Bio-hydrometallurgical Methods For Recycling Spent Lithium-Ion Batteries; 1 Introduction; 2 Spent LIBs Management; 2.1 Environmental Aspect; 2.2 Economical Aspect; 3 Recycling Methods of Spent LIBs; 3.1 Comparison of Recycling Methods; 4 Bioleaching (Microbial-Based Recovery); 4.1 Adaptation: A Tool for Improving One-Step and Two-Step Bioleaching; 5 Microbes in Bioleaching; 5.1 Autotrophic Bacteria; 5.2 Heterotrophic Bacteria and Fungi; 5.3 Comparison of Bacterial and Fungal Leaching; 6 Fungal Leaching … (more)
- Publisher Details:
- Cham : Springer
- Publication Date:
- 2019
- Extent:
- 1 online resource (219 pages)
- Subjects:
- 621.31/2424
Lithium ion batteries -- Recycling
Electronic books - Languages:
- English
- ISBNs:
- 9783030318345
3030318346 - Related ISBNs:
- 9783030318338
- Notes:
- Note: Print version record.
- Access Rights:
- Legal Deposit; Only available on premises controlled by the deposit library and to one user at any one time; The Legal Deposit Libraries (Non-Print Works) Regulations (UK).
- Access Usage:
- Restricted: Printing from this resource is governed by The Legal Deposit Libraries (Non-Print Works) Regulations (UK) and UK copyright law currently in force.
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library HMNTS - ELD.DS.465395
- Ingest File:
- 02_609.xml