# Extraction and Separation Processes

**Type:** Topics  
**Canonical URL:** https://scholariq.org/topics/extraction-and-separation-processes/

## Facts

| Field | Value |
| --- | --- |
| Description | This cluster of papers focuses on the recycling of lithium-ion batteries, recovery of rare earth elements, and sustainable technology for metal recovery. It discusses hydrometallurgical processes, circular economy implications, environmental impact, and global supply concerns related to battery recycling and rare earth recovery. |
| Domain | Physical Sciences |
| Field | Engineering |
| OpenAlex ID | t11091 |
| Works | 64 |

## Topic papers all

Showing 15 of 64.

- [Sustainability of artisanal mining of cobalt in DR Congo](https://scholariq.org/papers/sustainability-of-artisanal-mining-of-cobalt-in-dr-congo/)
- [Niobium-doped layered cathode material for high-power and low-temperature sodium-ion batteries](https://scholariq.org/papers/niobium-doped-layered-cathode-material-for-high-power-and-low-temperature-sodium/)
- [High‐Voltage Charging‐Induced Strain, Heterogeneity, and Micro‐Cracks in Secondary Particles of a Nickel‐Rich Layered Cathode Material](https://scholariq.org/papers/high-voltage-charging-induced-strain-heterogeneity-and-micro-cracks-in-secondary/)
- [Effects of ionic strength on removal of toxic pollutants from aqueous media with multifarious adsorbents: A review](https://scholariq.org/papers/effects-of-ionic-strength-on-removal-of-toxic-pollutants-from-aqueous-media-with/)
- [WEEE flow and mitigating measures in China](https://scholariq.org/papers/weee-flow-and-mitigating-measures-in-china/)
- [Highly efficient adsorption of strontium ions by carbonated mesoporous TiO2](https://scholariq.org/papers/highly-efficient-adsorption-of-strontium-ions-by-carbonated-mesoporous-tio2/)
- [Circumventing huge volume strain in alloy anodes of lithium batteries](https://scholariq.org/papers/circumventing-huge-volume-strain-in-alloy-anodes-of-lithium-batteries/)
- [Management of end-of-life photovoltaic panels as a step towards a circular economy](https://scholariq.org/papers/management-of-end-of-life-photovoltaic-panels-as-a-step-towards-a-circular/)
- [High power density nitridated hematite (α-Fe2O3) nanorods as anode for high-performance flexible lithium ion batteries](https://scholariq.org/papers/high-power-density-nitridated-hematite-fe2o3-nanorods-as-anode-for-high/)
- [Equilibrium and kinetic studies of adsorption of Cd(II) from aqueous solution using modified corn stalk](https://scholariq.org/papers/equilibrium-and-kinetic-studies-of-adsorption-of-cd-ii-from-aqueous-solution/)
- [Towards a Digital Lifecycle Passport for the Circular Economy](https://scholariq.org/papers/towards-a-digital-lifecycle-passport-for-the-circular-economy/)
- [Removal and immobilization of arsenic from copper smelting wastewater using copper slag by in situ encapsulation with silica gel](https://scholariq.org/papers/removal-and-immobilization-of-arsenic-from-copper-smelting-wastewater-using/)
- [Options for the Swedish steel industry – Energy efficiency measures and fuel conversion](https://scholariq.org/papers/options-for-the-swedish-steel-industry-energy-efficiency-measures-and-fuel/)
- [Salt-thermal methods for recycling and regenerating spent lithium-ion batteries: a review](https://scholariq.org/papers/salt-thermal-methods-for-recycling-and-regenerating-spent-lithium-ion-batteries/)
- [Toward Circular Energy: Exploring Direct Regeneration for Lithium‐Ion Battery Sustainability](https://scholariq.org/papers/toward-circular-energy-exploring-direct-regeneration-for-lithium-ion-battery/)

## Topic primary papers

Showing 15 of 17.

- [Salt-thermal methods for recycling and regenerating spent lithium-ion batteries: a review](https://scholariq.org/papers/salt-thermal-methods-for-recycling-and-regenerating-spent-lithium-ion-batteries/)
- [Toward Circular Energy: Exploring Direct Regeneration for Lithium‐Ion Battery Sustainability](https://scholariq.org/papers/toward-circular-energy-exploring-direct-regeneration-for-lithium-ion-battery/)
- [Recovery of Zinc, Cadmium, and Lanthanum by Biopolymer Gel Particles of Alginic Acid](https://scholariq.org/papers/recovery-of-zinc-cadmium-and-lanthanum-by-biopolymer-gel-particles-of-alginic/)
- [Extraction of lithium from salt lake brine with triisobutyl phosphate in ionic liquid and kerosene](https://scholariq.org/papers/extraction-of-lithium-from-salt-lake-brine-with-triisobutyl-phosphate-in-ionic/)
- [Rethinking Chinese supply resilience of critical metals in lithium-ion batteries](https://scholariq.org/papers/rethinking-chinese-supply-resilience-of-critical-metals-in-lithium-ion-batteries/)
- [Separation of macro amounts of tungsten and molybdenum by selective precipitation](https://scholariq.org/papers/separation-of-macro-amounts-of-tungsten-and-molybdenum-by-selective/)
- [Recovery of valuable metals from spent lithium-ion batteries through biomass pyrolysis gas-induced reduction](https://scholariq.org/papers/recovery-of-valuable-metals-from-spent-lithium-ion-batteries-through-biomass/)
- [Substance flow analysis of lithium for sustainable management in mainland China: 2007–2014](https://scholariq.org/papers/substance-flow-analysis-of-lithium-for-sustainable-management-in-mainland-china/)
- [Recovery of copper, nickel and cobalt from the leach liquor of a sulphide concentrate by solvent extraction](https://scholariq.org/papers/recovery-of-copper-nickel-and-cobalt-from-the-leach-liquor-of-a-sulphide/)
- [Extractive separation of copper and nickel from copper bleed stream by solvent extraction route](https://scholariq.org/papers/extractive-separation-of-copper-and-nickel-from-copper-bleed-stream-by-solvent/)
- [Extraction of lithium from salt lake brine by aluminum-based alloys](https://scholariq.org/papers/extraction-of-lithium-from-salt-lake-brine-by-aluminum-based-alloys/)
- [Towards a low carbon process for lithium recovery from spent lithium-ion batteries by a carbon conversion control strategy of carbothermic reduction](https://scholariq.org/papers/towards-a-low-carbon-process-for-lithium-recovery-from-spent-lithium-ion/)
- [Extraction in laboratory of heavy metals through rhizofiltration using the plant Zea mays (maize).](https://scholariq.org/papers/extraction-in-laboratory-of-heavy-metals-through-rhizofiltration-using-the-plant/)
- [Preferential lithium extraction and regeneration of LiCoO2 cathodes from spent lithium-ion batteries via two-step (NH4)2SO4 roasting approach](https://scholariq.org/papers/preferential-lithium-extraction-and-regeneration-of-licoo2-cathodes-from-spent/)
- [Selective recovery of valuable metals from NCM cathode scraps: A pretreatment-free process](https://scholariq.org/papers/selective-recovery-of-valuable-metals-from-ncm-cathode-scraps-a-pretreatment/)

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Source: ScholarIQ — public research metadata, principally OpenAlex. See https://scholariq.org/sources/ for provenance and https://scholariq.org/methodology/ for what these figures mean.
