政府(语言学)
电池(电)
工程管理
SPARK(编程语言)
纳米技术
业务
工程类
计算机科学
材料科学
物理
语言学
量子力学
哲学
功率(物理)
程序设计语言
作者
James B. Robinson,Kai Xi,R. Vasant Kumar,Andrea C. Ferrari,Heather Au,Maria‐Magdalena Titirici,Andrés Parra-Puerto,Anthony Kucernak,Samuel D. S. Fitch,Nuria Garcı́a-Aráez,Zachary Lee Brown,Mauro Pasta,Liam Furness,Alexander J. Kibler,Darren A. Walsh,Lee Johnson,Conrad Holc,Graham N. Newton,Neil R. Champness,Foivos Markoulidis
出处
期刊:JPhys energy
[IOP Publishing]
日期:2021-01-14
卷期号:3 (3): 031501-031501
被引量:148
标识
DOI:10.1088/2515-7655/abdb9a
摘要
Abstract Batteries that extend performance beyond the intrinsic limits of Li-ion batteries are among the most important developments required to continue the revolution promised by electrochemical devices. Of these next-generation batteries, lithium sulfur (Li–S) chemistry is among the most commercially mature, with cells offering a substantial increase in gravimetric energy density, reduced costs and improved safety prospects. However, there remain outstanding issues to advance the commercial prospects of the technology and benefit from the economies of scale felt by Li-ion cells, including improving both the rate performance and longevity of cells. To address these challenges, the Faraday Institution, the UK’s independent institute for electrochemical energy storage science and technology, launched the Lithium Sulfur Technology Accelerator (LiSTAR) programme in October 2019. This Roadmap, authored by researchers and partners of the LiSTAR programme, is intended to highlight the outstanding issues that must be addressed and provide an insight into the pathways towards solving them adopted by the LiSTAR consortium. In compiling this Roadmap we hope to aid the development of the wider Li–S research community, providing a guide for academia, industry, government and funding agencies in this important and rapidly developing research space.
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