Future material demand for automotive lithium-based batteries

被引:463
作者
Xu, Chengjian [1 ]
Dai, Qiang [2 ]
Gaines, Linda [2 ]
Hu, Mingming [1 ]
Tukker, Arnold [1 ]
Steubing, Bernhard [1 ]
机构
[1] Leiden Univ, Inst Environm Sci CML, NL-2300 RA Leiden, Netherlands
[2] Argonne Natl Lab, ReCell Ctr, Lemont, IL USA
基金
欧盟地平线“2020”;
关键词
ELECTRIC VEHICLES; ION BATTERIES; SUPPLY CHAIN; LIFE; IMPACT; DESIGN; HYBRID; FLOWS; CELLS;
D O I
10.1038/s43246-020-00095-x
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The world is shifting to electric vehicles to mitigate climate change. Here, we quantify the future demand for key battery materials, considering potential electric vehicle fleet and battery chemistry developments as well as second-use and recycling of electric vehicle batteries. We find that in a lithium nickel cobalt manganese oxide dominated battery scenario, demand is estimated to increase by factors of 18-20 for lithium, 17-19 for cobalt, 28-31 for nickel, and 15-20 for most other materials from 2020 to 2050, requiring a drastic expansion of lithium, cobalt, and nickel supply chains and likely additional resource discovery. However, uncertainties are large. Key factors are the development of the electric vehicles fleet and battery capacity requirements per vehicle. If other battery chemistries were used at large scale, e.g. lithium iron phosphate or novel lithium-sulphur or lithium-air batteries, the demand for cobalt and nickel would be substantially smaller. Closed-loop recycling plays a minor, but increasingly important role for reducing primary material demand until 2050, however, advances in recycling are necessary to economically recover battery-grade materials from end-of-life batteries. Second-use of electric vehicles batteries further delays recycling potentials. Lithium-ion-based batteries are a key enabler for the global shift towards electric vehicles. Here, considering developments in battery chemistry and number of electric vehicles, analysis reveals the increasing amounts of lithium, cobalt and nickel that could be needed.
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页数:10
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共 75 条
  • [1] A cascaded life cycle: reuse of electric vehicle lithium-ion battery packs in energy storage systems
    Ahmadi, Leila
    Young, Steven B.
    Fowler, Michael
    Fraser, Roydon A.
    Achachlouei, Mohammad Ahmadi
    [J]. INTERNATIONAL JOURNAL OF LIFE CYCLE ASSESSMENT, 2017, 22 (01) : 111 - 124
  • [2] Review of hybrid, plug-in hybrid, and electric vehicle market modeling Studies
    Al-Alawi, Baha M.
    Bradley, Thomas H.
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2013, 21 : 190 - 203
  • [3] Alves Dias P, 2018, COBALT DEMAND SUPPLY, V10, P97710
  • [4] [Anonymous], 2017, Electrochemical Energy Storage Technical Team Roadmap
  • [5] [Anonymous], 2019, GLOBAL EV OUTLOOK 20
  • [6] [Anonymous], 2020, CONNECT GLOBAL AUTOM
  • [7] [Anonymous], 2012, COMPARISON PLUG HYBR
  • [8] [Anonymous], 2020, ENERGY STORAGE NEWS
  • [9] [Anonymous], 2016, ITS SAFER OXIS LITHI
  • [10] [Anonymous], 2020, LFP CHEMISTRY IS EME