A Paradox over Electric Vehicles, Mining of Lithium for Car Batteries
Abstract
:1. Introduction
2. Scope of the Review
3. General Aspects of EVs
4. Lithium Sources, Other Metals, and Production
4.1. Lithium Reserves
4.2. Other Precious Metals
4.3. Suppliers of Lithium and Lithium Reserves
5. Types of Lithium Batteries and Their Characteristics
5.1. Types of Batteries
5.2. Battery Life
5.3. Extra Energy and CO2 Released for Making EVs
6. Technical Challenges and Social Aspects
6.1. Recycling of Spent LiBs
6.2. Dark Sides of Lithium Mining and Extraction
7. Trends and Future Possibilities
7.1. Advances in Battery Technology
7.2. Research in Battery Manufacturing Technology
7.3. Second-Life Applications of Spent LiBs
7.4. Safety Issues and State-of-Charge (SOC)
8. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Advantages | Disadvantages |
---|---|
-High reliability with few breakdowns as EVs have simple components | -Limited driving range: 200–350 km after a single full charge. -Tesla Model S range: up to 434 km (270 miles) [2] -Limited recharged points/stations (still in the development stages) |
-No engine explosion, vibration, or fuel corrosion. -No vibration or engine noise: more comfortable. | -Lengthy charging time, 4–8 h -Fast charge, 80% in 30 min -Supercharge, 50% in 20 min and 80% in 30 min (similar to fast charge). -Not suitable for cities with a shortage of electricity. -Home fast recharge is not available for many EV drivers. |
-Low maintenance costs and low operation costs the electricity. -Government subsidies in many countries. | -Expensive large battery package. Replacement of lithium batteries is very expensive -Heavy battery packs, up to 200 kg [3], occupy significant vehicle space. -Li-ion batteries tend to overheat and can be damaged at high voltages [1]. -Reduction of CO2 emission is only meaningful if electricity is generated from carbon-free sources. Nuclear power emits 12 g of CO2 equivalent per kWh of electricity produced, compared with 12 CO2/kWh from wind offshore, and 11 CO2/kWh from wind onshore [4]. Coal generates 820 g CO2/kWh. -Technology for the recovery of spent batteries remains to be developed. -The initial investment for an EV is significantly higher than for a conventional petrol car. -An EV battery pack can go into thermal runaway, leading to the release of toxic and flammable gases and fires start once the cell’s internal temperature rises above a certain level. |
Topics | Ref. |
---|---|
Creation of EVs from the 19th century to the present | Yong et al. [11] |
Production of EVs: Economic and environmental impacts | Richarson [12] |
Charging methods versus the power distribution systems | Habib [13] |
Incorporation of renewable energy into EVs | Liu et al. [14] |
Environmental impacts of hybrid EVs and battery EVs (EVs or BEVs). | Hawkins [15] |
A general vision of EVs: unidirectional charging versus bidirectional energy | Shuai [16] |
Revised intelligent charging of electric vehicles | Hu et al. [17] |
Vehicle technology: benefits and challenges | Tan et al. [18] |
Charging infrastructure of PHEVs and BEVs | Rahman [19] |
EV: charging and grid integration | Mahmud [20] |
Autonomous driving versus EV charging and grid integration | Das et al. [21] |
Data-driven battery health estimation | Li et al. [22] |
Prediction of lithium-ion batteries aging | Liu et al. [23] |
Advanced fault diagnosis techniques for battery | [24] |
Lithium Chemistry and Resources | General Information and Description | Ref. |
---|---|---|
Lithium atom | Density = 0.53 g/cm3 and an ionic diameter of = 1.58 Å. In solution, lithium is highly soluble as lithium ions (Li+). | |
Lithium resources | -Saline subsurface waters (continental brines) -Hydrothermally altered clays (sedimentary deposits) -Crystalline hard rock (pegmatites) -Lithium-bearing minerals are LiPO4 and complex aluminosilicates. -Potential lithium-bearing minerals are spodumene (lithium aluminosilicate), lepidolite (K(Li,Al)3(Al,Si,Rb)4O10(F,OH)2), petalite (LiAlSi4O10), and amblygonite ((Li,Na)AlPO4(F,OH)). | [36,37] |
Lithium quantity | -World lithium reserves = 21 million tons (MTs). -World lithium resource = 86 MTs. -The US lithium resource = 7.9 MTs from continental-geothermal brines, sedimentary deposits, and pegmatites [12]. -Thacker Pass (Humboldt County, Nevada): potentially 22.4 MTs | [38,39] |
Commercial lithium production | -Hard rock deposits in Australia and China. -Brine deposits in Argentina, Chile, and China -Brine deposits = 50 and 75% of the world’s lithium production -Brine lithium is produced mainly in South America | [38,40,41,42] |
Lithium [57] | Cobalt [58] | Nickel [59] | Manganese [60] |
14 | 7.1 | 95 | 1500 |
Chile: 8 Australia: 2.7 Argentina: 2 China: 1 Zimbabwe: 0.07 Portugal: 0.08 Brazil: 0.054 USA: 0.035 | DR Congo: 3.5 Australia: 1.4 Indonesia: 0.6 Cuba: 0.5 Philippine: 0.26 Russia: 0.22 Canada: 0.2 Madagascar: 0.1 China: 0.08 USA: 0.069 | Indonesia: 21 Australia: 21 Brazil: 16 Russia: 7.5 Philippines: 4.8 China: 2.8 Canada: 2 USA: 0.34 | South Africa: 200 Ukraine: 140 Brazil: 116 Australia: 91 India: 52 China: 43 Gabon: 22 Ghana: 12 Kazakhstan: 5 Mexico: 5 |
Reserve Name | Country | Li+ (%) | Mg2+ (%) | Mg/Li ratio |
---|---|---|---|---|
Salar de Atacama | Chile | 0.157 | 0.965 | 6.15 |
Maricunga | 0.092 | 0.74 | 0.84 | |
Uyuni | Bolivia | 0.0321 | 0.65 | 20.2 |
Cauchari | Argentina | 0.062 | 0.18 | 2.9 |
Olaroz | 0.09 | 0.18 | 2 | |
Hombre Muerto | 0.062 | 0.089 | 1.44 | |
Rincon | 0.034 | 0.04 | 1.18 | |
Silver Peak | USA, Esmeralda, Nevada | 0.03 | 0.04 | 1.33 |
Salton Sea | California, Riverside | 0.022 | 0.028 | 1.27 |
Smackover | South Arkansas | 0.038 | 0.75 | 19.7 |
Clayton Valley | Nevada | 0.0163 | 0.019 | 1.17 |
East Taijinar | China | 0.085 | 2.99 | 35.2 |
West Taijinar | 0.021 | 1.28 | 64 | |
Yiliping | 0.022 | 2 | 91 | |
Zabuye | 0.97 | 0.001 | 0.001 | |
Dead Sea | Israel | 0.002 | 3.4 | 1700 |
Electrode-Structure | General Remarks and Characteristics |
---|---|
LCO-lithium cobalt oxide (LiCO2) | -Still widely used in portable electronics with high energy density and cycle life with good reliability. |
LMO (LiMn2O4)-lithium manganese oxide; spinel | -MnO2 is non-toxic and earth-abundant, low cost, and has ecological appeal. |
NMC-nickel manganese cobalt layered/spinel (LiNiMnCoC2) | -Most widely used for transportation applications with high specific energy and extra performances concerning specific power, lifetime, and safety. A typical NMC cathode powder is referred to as a 1-1-1 blend (1/3 Ni, 1/3 Mn, and 1/3 Co) -Newly developed NMC 811 has only 10% Co, 80% Ni, and 10% Mn -Its deployment is highly expected in upcoming EVs. |
LiNiO2-layered | -Cheaper with higher energy density but less stable, compared to LiCoO2 |
LFP-olivine (LiFePO4, lithium iron phosphate) (Li2FePO4F-olivine) | -Stable but is less dense energy than Ni-based counterparts. -Ideal for stationary applications with low cost and high safety. -A promising electrode material, tavorite-structured lithium-metal-fluorophosphate. |
NCA, lithium nickel cobalt aluminum oxide | -Based on Ni, Co, and Al as the cathode material, e.g., LiNi0.8Co0.15 Al0.05 O2, i.e., good energy density with minimal Co. Commercial EVs and most Tesla vehicles are powered with NCA. |
C-LiFePO4 | -Coated with carbon with 4% Li, 32% Fe, 20% PO4, 0.3% manganese, a trace of lead, and 1.5% carbon. Tesla indicated a switch to LFP-type batteries after incorporating mostly NCA types in the past. |
LTO-Lithium titanate-oxide (Li4Ti5O12) | -Considerably lower energy density than most other lithium batteries—Fast-charging capability and long cycle life. |
CO2 Emission (g/km) | Mitsubishi-iMiEV | Ford Focus |
---|---|---|
Raw material production | 163.7 | 100.9 |
Manufacturing | 34.1 | 37.3 |
Transportation | 2.6 | 1.4 |
Operation | 2.2 | 253 |
Decommissioning | 0.194 | 0.012 |
Total | 202.8 | 392.6 |
|
Country | Financial Packages |
---|---|
Belgium | EUR 4000 (purchase) and EUR 74 (for road tax instead of EUR 1900) |
France | EUR 4000–6000 |
Germany | EUR 4000 |
The UK | GBP 4500 without circulation taxes if the car’s value is <GBP 40,000 |
Spain | EUR 1300–5500 |
USA | USD 2500 (purchase) and 417 USD/kWh from 4 kWh to a maximum of USD 7500 |
Quebec, Canada | Up to CAD 7000, depending on the model |
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Luong, J.H.T.; Tran, C.; Ton-That, D. A Paradox over Electric Vehicles, Mining of Lithium for Car Batteries. Energies 2022, 15, 7997. https://doi.org/10.3390/en15217997
Luong JHT, Tran C, Ton-That D. A Paradox over Electric Vehicles, Mining of Lithium for Car Batteries. Energies. 2022; 15(21):7997. https://doi.org/10.3390/en15217997
Chicago/Turabian StyleLuong, John H. T., Cang Tran, and Di Ton-That. 2022. "A Paradox over Electric Vehicles, Mining of Lithium for Car Batteries" Energies 15, no. 21: 7997. https://doi.org/10.3390/en15217997
APA StyleLuong, J. H. T., Tran, C., & Ton-That, D. (2022). A Paradox over Electric Vehicles, Mining of Lithium for Car Batteries. Energies, 15(21), 7997. https://doi.org/10.3390/en15217997