商业化
锂硫电池
电池(电)
托换
纳米技术
重组
风险分析(工程)
可持续能源
金属锂
系统工程
持续性
纳米技术的社会影响
计算机科学
高效能源利用
铅(地质)
技术进步
颠覆性技术
工程伦理学
生化工程
储能
可持续发展
制造工程
工程类
作者
Yiheng Shao,Boyi Pang,Liam Bird,James B. Robinson,Paul R. Shearing
标识
DOI:10.1002/aenm.202503239
摘要
Abstract The lithium sulfur battery offers disruptive potential for applications that demand high energy density, and sustainable materials supply chains. Whilst the liquid‐based Li‐S technology has studied for decades, it is only comparatively recently that the chemistry has gained significant commercial traction. Historically significant and persistent challenges have hampered the technology, most pressingly, poor cyclability; however, recent efforts have demonstrated viable routes to overcome these impediments, with commercial traction increasing across the globe. These developments have addressed commercialization barriers, including the use of LiNO 3 as an electrolyte additive. For example, recent activity has shown progress toward more ‘solid‐state’ conversion mechanisms, including the so‐called ‘quasi‐solid state’ system. The contemporary research landscape across liquid, quasi‐ and all‐solid‐state Li‐S chemistries is reviewed. For each, a didactic overview of the underpinning operation is provided, and the literature on new mechanistic understanding, state‐of‐the‐art characterization and materials solutions is comprehensively examined. The Li‐S battery is at an inflection point in commercial deployment; this review aims to highlight the need to increase the focus of academic research on overcoming the remaining barriers to commercialization whilst continuing to identify fundamental operating mechanisms and material developments to accelerate the realization of the potential of this chemistry.
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