Environmental aspects of batteries

Sustainable Horizons - Tập 8 - Trang 100074 - 2023
Mohammad Ali Abdelkareem1,2,3, Mohamad Ayoub1,2, Siren Khuri2, Abdul Hai Alami1,2, Enas Taha Sayed3, T D Deepa2, A.G. Olabi1,2
1Sustainable and Renewable Energy Engineering Dept., University of Sharjah, Sharjah 27272, United Arab Emirates
2Sustainable Energy & Power Systems Research Centre, RISE, University of Sharjah, Sharjah 27272, United Arab Emirates
3Chemical Engineering Department, Minia University, Elminia, Egypt

Tài liệu tham khảo

2008 ABC “Primary and Rechargeable Battery Chemistries with Energy Density.” https://www.epectec.com/batteries/chemistry/(accessed May 13, 2023). Abc “Phase Out of Internal Combustion Engine Vehicle Sales Policies: U.K. | NetZero Pathfinders.” https://www.bloomberg.com/netzeropathfinders/best-practices/phase-out-of-internal-combustion-engine-vehicle-sales-policies/ (accessed May 19, 2023). Abc “How Much Carbon Dioxide Does An Internal combustion, hybrid and electric car emit? - EVSE Australia,” https://evse.com.au/, Accessed: May 19, 2023. [Online]. Available: https://evse.com.au/blog/how-much-carbon-dioxide-does-an-internal-combustion-hybrid-and-electric-car-emit/. ABC, “Electric vehicles - IEA.” https://www.iea.org/energy-system/transport/electric-vehicles (accessed Sep. 16, 2023). ABC “Electric ships: the world's top five projects by battery capacity - Ship Technology.” https://www.ship-technology.com/features/electric-ships-the-world-top-five-projects-by-battery-capacity/(accessed Sep. 16, 2023). Adu-Gyamfi, 2022, Electric aviation: a review of concepts and enabling technologies, Transportation Engineering, 9, 10.1016/j.treng.2022.100134 Aktaş, 2021, Solar Hybrid Systems and Energy Storage Systems, 87 Allam, 2022, Green new deals could be the answer to COP26’s deep decarbonisation needs, Sustainable Horizons, 1, 10.1016/j.horiz.2022.100006 Amogne, 2023, Transfer Learning Based on Transferability Measures for State of Health Prediction of Lithium-Ion Batteries, Batteries, 9, 280, 10.3390/batteries9050280 Arai, 2009, SECONDARY BATTERIES – METAL-AIR SYSTEMS | Overview (Secondary and Primary), 347 Arbabzadeh, 2015, Vanadium redox flow batteries to reach greenhouse gas emissions targets in an off-grid configuration, Appl. Energy, 146, 397, 10.1016/j.apenergy.2015.02.005 Axsen, 2010, Batteries for PHEVs, 405 Backhaus, 2023, Cell Development for the Batteries of Future Electric Vehicles, MTZ Worldwide, 84, 8, 10.1007/s38313-023-1520-x Bauknecht, 2023, Comparing the cold-cranking performance of lead-acid and lithium iron phosphate batteries at temperatures below 0°C, Batteries, 9, 176, 10.3390/batteries9030176 Becker, 2023, New Mass Transport Correlation for Vanadium Redox-Flow Batteries Based on a Model-Assisted Parameter Estimation, Batteries, 9, 253, 10.3390/batteries9050253 Bouter, 2022, The greenhouse gas emissions of automotive lithium-ion batteries: a statistical review of life cycle assessment studies, J Clean Prod, 344, 10.1016/j.jclepro.2022.130994 Chen, 2022, Peak shaving benefit assessment considering the joint operation of nuclear and battery energy storage power stations: hainan case study, Energy, 239, 10.1016/j.energy.2021.121897 Dam, 2023, Renewable energy consumption, real income, trade openness, and inverted load capacity factor nexus in Turkiye: revisiting the EKC hypothesis with environmental sustainability, Sustainable Horizons, 8, 10.1016/j.horiz.2023.100063 Dehghani-Sanij, 2019, Study of energy storage systems and environmental challenges of batteries, Renewable Sustainable Energy Rev., 104, 192, 10.1016/j.rser.2019.01.023 Fang, 2023, Readily Accessible M-Ferrocenyl-Phenyl Sulfonate as Novel Cathodic Electrolyte for Aqueous Organic Redox Flow Batteries, Batteries, 9, 285, 10.3390/batteries9050285 Fernandez-Marchante, 2020, Environmental and Preliminary Cost Assessments of Redox Flow Batteries for Renewable Energy Storage, Energy Technol., 8, 10.1002/ente.201900914 Glogic, 2021, Environmental Trade-Offs of Downcycling in Circular Economy: combining Life Cycle Assessment and Material Circularity Indicator to Inform Circularity Strategies for Alkaline Batteries, Sustainability, 13, 1040, 10.3390/su13031040 Gray, 2021, Decarbonising ships, planes and trucks: an analysis of suitable low-carbon fuels for the maritime, aviation and haulage sectors, Adv. Appl. Energy, 1, 10.1016/j.adapen.2021.100008 Han, 2023, Comparative life cycle greenhouse gas emissions assessment of battery energy storage technologies for grid applications, J. Clean. Prod., 392, 10.1016/j.jclepro.2023.136251 Hanser, 2022, Occupational exposure to metals among battery recyclers in France: biomonitoring and external dose measurements, Waste Manage. (Oxford), 150, 122, 10.1016/j.wasman.2022.06.044 Hosseiny, 2011, Ion exchange membranes for vanadium redox flow batteries, 413 Koumentakos, 2019, Developments in Electric and Green Marine Ships, Appl. Syst. Innov., 2, 34, 10.3390/asi2040034 Kozlova, 2021, Technical Advances in Aviation Electrification: enhancing Strategic R&D Investment Analysis through Simulation Decomposition, Sustainability, 14, 414, 10.3390/su14010414 Krishnamoorthy, 2023, Efficient Battery Models for Performance Studies-Lithium Ion and Nickel Metal Hydride Battery, Batteries, 9, 52, 10.3390/batteries9010052 Kumar, 2022, Lead and other elements-based pollution in soil, crops and water near a lead-acid battery recycling factory in Bangladesh, Chemosphere, 290, 10.1016/j.chemosphere.2021.133288 Kwiecien, 2017, Current research topics for lead–acid batteries, 133 Lai, 2022, Investigating greenhouse gas emissions and environmental impacts from the production of lithium-ion batteries in China, J Clean Prod, 372, 10.1016/j.jclepro.2022.133756 Lai, 2022, Critical review of life cycle assessment of lithium-ion batteries for electric vehicles: a lifespan perspective, eTransportation, 12, 10.1016/j.etran.2022.100169 Lee, 2021, Technical feasibility and economics of repurposed electric vehicles batteries for power peak shaving, J. Energy Storage, 40, 10.1016/j.est.2021.102752 Lim, 2023, Critical review on the development of biomass waste as precursor for carbon material as electrocatalysts for metal-air batteries, Renewable Sustainable Energy Rev., 184, 10.1016/j.rser.2023.113451 Lin, 2022, Energy sources evaluation based on multi-criteria decision support approach in China, Sustainable Horizons, 2, 10.1016/j.horiz.2022.100017 Lipu, 2022, Battery Management, Key Technologies, Methods, Issues, and Future Trends of Electric Vehicles: a Pathway toward Achieving Sustainable Development Goals, Batteries, 8, 119, 10.3390/batteries8090119 Lisbona, 2011, A review of hazards associated with primary lithium and lithium-ion batteries, Process Saf. Environ. Prot., 89, 434, 10.1016/j.psep.2011.06.022 “Lithium-Ion Battery - Clean Energy Institute.” https://www.cei.washington.edu/education/science-of-solar/battery-technology/(accessed May 13, 2023). Litjens, 2018, Lowering greenhouse gas emissions in the built environment by combining ground source heat pumps, photovoltaics and battery storage, Energy Build., 180, 51, 10.1016/j.enbuild.2018.09.026 Liu, 2023, Regeneration and reuse of anode graphite from spent lithium-ion batteries with low greenhouse gas (GHG) emissions, Chin. Chem. Lett. Liu, 2023, Life cycle environmental and economic assessment of electric bicycles with different batteries in China, J. Clean. Prod., 385, 10.1016/j.jclepro.2022.135715 Lu, 2022, Effects of Cell Design Parameters on Zinc-Air Battery Performance, Batteries, 8, 92, 10.3390/batteries8080092 Lucas, 2016, Smart grid energy storage controller for frequency regulation and peak shaving, using a vanadium redox flow battery, Int. J. Electr. Power Energy Syst., 80, 26, 10.1016/j.ijepes.2016.01.025 Manojlović, 2023, Environmental impact assessment of the electric vehicles: a case study, Energy Sources Part A, 45, 1007, 10.1080/15567036.2023.2173342 Maske, 2023, Development of environmentally and economically sustainable delamination process for spent lithium-ion batteries, Energy Sources Part A, 45, 2572, 10.1080/15567036.2023.2187899 Mauler, 2021, Battery cost forecasting: a review of methods and results with an outlook to 2050, Energy Environ. Sci., 14, 4712, 10.1039/D1EE01530C T. Ohsaki, N. Takami, M. Kanda, and M. Yamamoto, “High Performance Thin Lithium-Ion Battery Using an Aluminum-Plastic Laminated Film Bag,” 2001, pp. 925–928. doi: 10.1016/S0167-2991(01)82238-2. Pucker-Singer, 2021, Greenhouse Gas Emissions of Stationary Battery Installations in Two Renewable Energy Projects, Sustainability, 13, 6330, 10.3390/su13116330 Qu, 2022, Potential for recycling of spent lithium-ion batteries in China, Energy Sources Part A, 44, 7573, 10.1080/15567036.2022.2115585 Raj, 2023, Lead pollution: impact on environment and human health and approach for a sustainable solution, Environ. Chem. Ecotoxicol., 5, 79, 10.1016/j.enceco.2023.02.001 Ramesh, 2020, Effect of different batteries and diesel generator on the performance of a stand-alone hybrid renewable energy system, Energy Sources Part A, 1, 10.1080/15567036.2020.1763520 Sacchi, 2022, When, where and how can the electrification of passenger cars reduce greenhouse gas emissions?, Renewable Sustainable Energy Rev., 162, 10.1016/j.rser.2022.112475 Sasaki, 2013, Memory effect in a lithium-ion battery, Nat. Mater., 12, 569, 10.1038/nmat3623 Schäfer, 2018, Technological, economic and environmental prospects of all-electric aircraft, Nat Energy, 4, 160, 10.1038/s41560-018-0294-x Šimić, 2021, Battery energy storage technologies overview, Int. J. Electr. Comput. Eng. Syst., 12, 53 Spoerke, 2022, Driving Zn-MnO2 grid-scale batteries: a roadmap to cost-effective energy storage, MRS Energy Sustainability, 9, 13, 10.1557/s43581-021-00018-4 Tuna, 2016, Energy harvesting and battery technologies for powering wireless sensor networks, 25 Venet, 2023, Battery Performance, Ageing, Reliability and Safety, Batteries, 9, 277, 10.3390/batteries9050277 Verma, 2021, Recent developments in energy storage systems for marine environment, Mater. Adv., 2, 6800, 10.1039/D1MA00746G Wang, 2018, Environmental impact analysis and process optimization of batteries based on life cycle assessment, J Clean Prod, 174, 1262, 10.1016/j.jclepro.2017.11.059 Weber, 2011, Redox flow batteries: a review, J. Appl. Electrochem., 41, 1137, 10.1007/s10800-011-0348-2 Wu, 2018, Life cycle greenhouse gas emission reduction potential of battery electric vehicle, J Clean Prod, 190, 462, 10.1016/j.jclepro.2018.04.036 Yi, 2022, Battery wastewater induces nephrotoxicity via disordering the mitochondrial dynamics, Chemosphere, 303, 10.1016/j.chemosphere.2022.135018 Yu, 2020, Seawater electrolyte-based metal–air batteries: from strategies to applications, Energy Environ. Sci., 13, 3253, 10.1039/D0EE01617A Yudhistira, 2022, A comparative life cycle assessment of lithium-ion and lead-acid batteries for grid energy storage, J. Clean. Prod., 358, 10.1016/j.jclepro.2022.131999 Zhao, 2021, A Review on Battery Market Trends, Second-Life Reuse, and Recycling, Sustainable Chem., 2, 167, 10.3390/suschem2010011 Zhong, 2021, A Cost- and Energy Density-Competitive Lithium-Sulfur Battery, Energy Storage Mater., 41, 588, 10.1016/j.ensm.2021.06.037 Zou, 2020, Water-proof, electrolyte-nonvolatile, and flexible Li-Air batteries via O2-Permeable silica-aerogel-reinforced polydimethylsiloxane external membranes, Energy Storage Mater., 27, 297, 10.1016/j.ensm.2020.02.014