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Single-metal site-embedded conjugated macrocyclic hybrid catalysts enable  boosted CO2 reduction and evolution kinetics in Li-CO2 batteries -  ScienceDirect
Single-metal site-embedded conjugated macrocyclic hybrid catalysts enable boosted CO2 reduction and evolution kinetics in Li-CO2 batteries - ScienceDirect

Li-CO2 Electrochemistry: A New Strategy for CO2 Fixation and Energy Storage  - ScienceDirect
Li-CO2 Electrochemistry: A New Strategy for CO2 Fixation and Energy Storage - ScienceDirect

Poly(ionic liquid) membranes preserving liquid crystalline microstructures  for lithium-ion enrichment - ScienceDirect
Poly(ionic liquid) membranes preserving liquid crystalline microstructures for lithium-ion enrichment - ScienceDirect

Metals | Free Full-Text | Early-Stage Recovery of Lithium from Tailored  Thermal Conditioned Black Mass Part I: Mobilizing Lithium via Supercritical  CO2-Carbonation
Metals | Free Full-Text | Early-Stage Recovery of Lithium from Tailored Thermal Conditioned Black Mass Part I: Mobilizing Lithium via Supercritical CO2-Carbonation

Comprehensive Review on Concept and Recycling Evolution of Lithium-Ion  Batteries (LIBs) | Energy & Fuels
Comprehensive Review on Concept and Recycling Evolution of Lithium-Ion Batteries (LIBs) | Energy & Fuels

Energies | Free Full-Text | Recycling of Lithium Batteries—A Review
Energies | Free Full-Text | Recycling of Lithium Batteries—A Review

Tracing the origin of lithium in Li-ion batteries using lithium isotopes |  Nature Communications
Tracing the origin of lithium in Li-ion batteries using lithium isotopes | Nature Communications

Lithium-CO2 Batteries; Understanding the Challenges and Prospects
Lithium-CO2 Batteries; Understanding the Challenges and Prospects

Recent Advances in Rechargeable Li–CO2 Batteries | Energy & Fuels
Recent Advances in Rechargeable Li–CO2 Batteries | Energy & Fuels

RecycLiCo Battery Materials Highlights CO2 Emission Savings for Lithium  Production - RecycLiCo Battery Materials
RecycLiCo Battery Materials Highlights CO2 Emission Savings for Lithium Production - RecycLiCo Battery Materials

The new 'gold rush' for green lithium - BBC Future
The new 'gold rush' for green lithium - BBC Future

Recent Advances in Rechargeable Li–CO2 Batteries | Energy & Fuels
Recent Advances in Rechargeable Li–CO2 Batteries | Energy & Fuels

Governing Role of Solvent on Discharge Activity in Lithium–CO2 Batteries |  The Journal of Physical Chemistry Letters
Governing Role of Solvent on Discharge Activity in Lithium–CO2 Batteries | The Journal of Physical Chemistry Letters

Li-CO2 Electrochemistry: A New Strategy for CO2 Fixation and Energy Storage
Li-CO2 Electrochemistry: A New Strategy for CO2 Fixation and Energy Storage

Carbon Footprint of Lithium-Ion Battery Production (vs Gasoline, Lead-Acid)
Carbon Footprint of Lithium-Ion Battery Production (vs Gasoline, Lead-Acid)

Recent advances and perspectives of metal/covalent-organic frameworks in  metal-air batteries - ScienceDirect
Recent advances and perspectives of metal/covalent-organic frameworks in metal-air batteries - ScienceDirect

Interfacial engineering in hollow NiS2/FeS2-NSGA heterostructures with  efficient catalytic activity for advanced Li-CO2 battery - ScienceDirect
Interfacial engineering in hollow NiS2/FeS2-NSGA heterostructures with efficient catalytic activity for advanced Li-CO2 battery - ScienceDirect

Carbothermic reduction of spent Lithium-Ion batteries using CO2 as reaction  medium - ScienceDirect
Carbothermic reduction of spent Lithium-Ion batteries using CO2 as reaction medium - ScienceDirect

Lithium Carbonate Recovery from Cathode Scrap of Spent Lithium-Ion Battery:  A Closed-Loop Process | Environmental Science & Technology
Lithium Carbonate Recovery from Cathode Scrap of Spent Lithium-Ion Battery: A Closed-Loop Process | Environmental Science & Technology

Anion-enrichment interface enables high-voltage anode-free lithium metal  batteries | Nature Communications
Anion-enrichment interface enables high-voltage anode-free lithium metal batteries | Nature Communications

Achilles' Heel of Lithium–Air Batteries: Lithium Carbonate - Zhao - 2018 -  Angewandte Chemie International Edition - Wiley Online Library
Achilles' Heel of Lithium–Air Batteries: Lithium Carbonate - Zhao - 2018 - Angewandte Chemie International Edition - Wiley Online Library

Catalysts for Li−CO2 Batteries: From Heterogeneous to Homogeneous - Hao -  2022 - ChemNanoMat - Wiley Online Library
Catalysts for Li−CO2 Batteries: From Heterogeneous to Homogeneous - Hao - 2022 - ChemNanoMat - Wiley Online Library

The Stabilization Effect of CO2 in Lithium–Oxygen/CO2 Batteries - Chen -  2020 - Angewandte Chemie International Edition - Wiley Online Library
The Stabilization Effect of CO2 in Lithium–Oxygen/CO2 Batteries - Chen - 2020 - Angewandte Chemie International Edition - Wiley Online Library

Metals | Free Full-Text | Early-Stage Recovery of Lithium from Tailored  Thermal Conditioned Black Mass Part I: Mobilizing Lithium via Supercritical  CO2-Carbonation
Metals | Free Full-Text | Early-Stage Recovery of Lithium from Tailored Thermal Conditioned Black Mass Part I: Mobilizing Lithium via Supercritical CO2-Carbonation

Hydrogen‐Bonded Organic Framework to Upgrade Cycling Stability and Rate  Capability of Li‐CO2 Batteries - Cheng - Angewandte Chemie International  Edition - Wiley Online Library
Hydrogen‐Bonded Organic Framework to Upgrade Cycling Stability and Rate Capability of Li‐CO2 Batteries - Cheng - Angewandte Chemie International Edition - Wiley Online Library

Recent Advances in Rechargeable Li–CO2 Batteries | Energy & Fuels
Recent Advances in Rechargeable Li–CO2 Batteries | Energy & Fuels