Sustainable Electric Vehicle Batteries for a Sustainable World: Perspectives on Battery Cathodes, Environment, Supply Chain, Manufacturing, Life Cycle, and Policy
Экологически устойчивые аккумуляторные батареи для электромобилей ради устойчивого мира: перспективы развития катодных материалов, экологические аспекты, цепочка поставок, производство, жизненный цикл и политика
2022-05-10
SCID: 54.1/6jf4fznv
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battery recyclingelectric vehicleslife cycle assessmentlithium-ion batteriessustainable manufacturing
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Abstract (AI)
Abstract Li‐ion batteries (LIBs) can reduce carbon emissions by powering electric vehicles (EVs) and promoting renewable energy development with grid‐scale energy storage. However, LIB production and electricity generation still heavily rely on fossil fuels at present, resulting in major environmental concerns. Are LIBs as environmentally friendly and sustainable as expected at the current stage? In the past 5 years, a skyrocketing growth of the EV market has been witnessed. LIBs have garnered huge attention from academia, industry, government, non‐governmental organizations, investors, and the general public. Tremendous volumes of LIBs are already implemented in EVs today, with a continuing, exponential growth expected for the years to come. When LIBs reach their end‐of‐life in the next decades, what technologies can be in place to enable second‐life or recycling of batteries? Herein, life cycle assessment studies are examined to evaluate the environmental impact of LIBs, and EVs are compared with internal combustion engine vehicles regarding environmental sustainability. To provide a holistic view of the LIB development, this Perspective provides insights into materials development, manufacturing, recycling, legislation and policy, and beyond. Last but not least, the future development of LIBs and charging infrastructures in light of emerging technologies are envisioned.
Key Findings
1
A holistic pathway for sustainable lithium-ion batteries must integrate materials development, manufacturing, recycling, legislation, policy, and emerging charging-infrastructure technologies.
2
Future sustainability requires effective second-life applications and recycling technologies for the large volumes of batteries expected to reach end of life in coming decades.
3
Lithium-ion batteries can reduce carbon emissions through electric vehicles and grid-scale renewable-energy storage, but their current sustainability benefits are constrained by fossil-fuel-dependent production and electricity generation.
4
The Perspective evaluates battery and electric-vehicle environmental impacts using life-cycle assessment and compares electric vehicles with internal-combustion-engine vehicles for environmental sustainability.
5
The rapidly expanding electric-vehicle market is driving unprecedented deployment of lithium-ion batteries, with exponential growth expected to continue in coming years.
Research Object
Lithium-ion batteries (LIBs) used in electric vehicles and grid storage
Research Subject
their environmental sustainability across the life cycle, including cathode materials, manufacturing, supply chains, use, recycling, second-life applications, charging infrastructure, and policy
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2022-05-10
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