返回
2020 roadmap on solid-state batteries
DOI:10.1088/2515-7655/ab95f4.png)
摘要
En 中文
Li-ion batteries have revolutionized the portable electronics industry and empowered the electric vehicle (EV) revolution. Unfortunately, traditional Li-ion chemistry is approaching its physicochemical limit. The demand for higher density (longer range), high power (fast charging), and safer EVs has recently created a resurgence of interest in solid state batteries (SSB). Historically, research has focused on improving the ionic conductivity of solid electrolytes, yet ceramic solids now deliver sufficient ionic conductivity. The barriers lie within the interfaces between the electrolyte and the two electrodes, in the mechanical properties throughout the device, and in processing scalability. In 2017 the Faraday Institution, the UK's independent institute for electrochemical energy storage research, launched the SOLBAT (solid-state lithium metal anode battery) project, aimed at understanding the fundamental science underpinning the problems of SSBs, and recognising that the paucity of such understanding is the major barrier to progress. The purpose of this Roadmap is to present an overview of the fundamental challenges impeding the development of SSBs, the advances in science and technology necessary to understand the underlying science, and the multidisciplinary approach being taken by SOLBAT researchers in facing these challenges. It is our hope that this Roadmap will guide academia, industry, and funding agencies towards the further development of these batteries in the future.
Keyword:
solid-state batteries
lithium metal
interfaces
期刊
J
IF:
6.3
论文数:
550
被引数:
2.7K
机构
引用论文
Innovative Electrolytes Based on Ionic Liquids and Polymers for Next-Generation Solid -State Batteries用于下一代固态电池的基于离子液体和聚合物的创新电解质
State-of-the-art characterization techniques for advanced lithium-ion batteries先进锂离子电池的最新表征技术
NATURE ENERGY
IF60.1
Li+ and Na+ transfer through interfaces between inorganic solid electrolytes and polymer or liquid electrolytesLi和Na通过无机固体电解质与聚合物或液体电解质之间的界面转移
Novel fast lithium ion conduction in garnet-type Li5La3M2O12 (M = Nb, Ta)石榴石型Li5La3M2O12 (M = Nb,Ta) 中的新型快速锂离子传导
High-energy long-cycling all-solid-state lithium metal batteries enabled by silver-carbon composite anodes银-碳复合阳极支持的高能量长循环全固态锂金属电池
NATURE ENERGY
IF60.1
Observation of Chemomechanical Failure and the Influence of Cutoff Potentials in All-Solid-State Li-S Batteries观察全固态li-s电池的化学机械故障和截止电位的影响
Structure, Chemistry, and Charge Transfer Resistance of the Interface between Li7La3Zr2O12 Electrolyte and LiCoO2 CathodeLi7La3Zr2O12电解质与LiCoO2阴极之间的界面的结构,化学和电荷转移电阻

