Lopez Sergio, Akizu-Gardoki Ortzi, Lizundia Erlantz
Department of Graphic Design and Engineering Projects, Faculty of Engineering in Bilbao, University of the Basque Country (UPV/EHU), Bilbao 48103, Spain.
Ekopol: Transition Pathways Research Group, University of the Basque Country (UPV/EHU), Leioa 48940, Spain.
J Clean Prod. 2021 Feb 1;282:124528. doi: 10.1016/j.jclepro.2020.124528. Epub 2020 Oct 6.
Lithium-sulfur (Li-S) batteries present a great potential to displace current energy storage chemistries thanks to their energy density that goes far beyond conventional batteries. To promote the development of greener Li-S batteries, closing the existing gap between the quantification of the potential environmental impacts associated with Li-S cathodes and their performance is required. Herein we show a comparative analysis of the life cycle environmental impacts of five Li-S battery cathodes with high sulfur loadings (1.5-15 mg·cm) through life cycle assessment (LCA) methodology and cradle-to-gate boundary. Depending on the selected battery, the environmental impact can be reduced by a factor up to 5. LCA results from Li-S batteries are compared with the conventional lithium ion battery from Ecoinvent 3.6 database, showing a decreased environmental impact per kWh of storage capacity. A predominant role of the electrolyte on the environmental burdens associated with the use of Li-S batteries was also found. Sensitivity analysis shows that the specific impacts can be reduced by up to 70% by limiting the amount of used electrolyte. Overall, this manuscript emphasizes the potential of Li-S technology to develop environmentally benign batteries aimed at replacing existing energy storage systems.
锂硫(Li-S)电池因其远超传统电池的能量密度,在取代现有储能化学体系方面具有巨大潜力。为推动更环保的锂硫电池发展,需要弥合与锂硫阴极相关的潜在环境影响量化与其性能之间的现有差距。在此,我们通过生命周期评估(LCA)方法和从摇篮到大门的边界,对五种高硫负载(1.5 - 15 mg·cm)的锂硫电池阴极的生命周期环境影响进行了比较分析。根据所选电池的不同,环境影响可降低多达5倍。将锂硫电池的LCA结果与Ecoinvent 3.6数据库中的传统锂离子电池进行比较,结果表明每千瓦时存储容量的环境影响有所降低。还发现电解质在与锂硫电池使用相关的环境负担中起主要作用。敏感性分析表明,通过限制电解质的使用量,特定影响可降低多达70%。总体而言,本手稿强调了锂硫技术在开发旨在取代现有储能系统的环境友好型电池方面的潜力。