Liu Yiming, Qin Tian, Wang Pengxian, Yuan Menglei, Li Qiongguang, Feng Shaojie
Queen Mary University of London Engineering School, Northwestern Polytechnical University, Xi'an 710129, China.
State Key Laboratory of Solidification Processing, Center for Nano Energy Materials, School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, China.
Materials (Basel). 2023 Jun 13;16(12):4359. doi: 10.3390/ma16124359.
The lithium-sulfur (Li-S) battery is considered to be one of the attractive candidates for breaking the limit of specific energy of lithium-ion batteries and has the potential to conquer the related energy storage market due to its advantages of low-cost, high-energy density, high theoretical specific energy, and environmental friendliness issues. However, the substantial decrease in the performance of Li-S batteries at low temperatures has presented a major barrier to extensive application. To this end, we have introduced the underlying mechanism of Li-S batteries in detail, and further concentrated on the challenges and progress of Li-S batteries working at low temperatures in this review. Additionally, the strategies to improve the low-temperature performance of Li-S batteries have also been summarized from the four perspectives, such as electrolyte, cathode, anode, and diaphragm. This review will provide a critical insight into enhancing the feasibility of Li-S batteries in low-temperature environments and facilitating their commercialization.
锂硫(Li-S)电池被认为是突破锂离子电池比能量限制的有吸引力的候选者之一,由于其低成本、高能量密度、高理论比能量以及环境友好等优点,有潜力占领相关储能市场。然而,Li-S电池在低温下性能的大幅下降成为其广泛应用的主要障碍。为此,我们在本综述中详细介绍了Li-S电池的潜在机制,并进一步关注了Li-S电池在低温下工作面临的挑战和取得的进展。此外,还从电解质、阴极、阳极和隔膜四个角度总结了提高Li-S电池低温性能的策略。本综述将为增强Li-S电池在低温环境下的可行性并推动其商业化提供关键见解。