ACS Nano · 2023 · 114 citations · 57 references
In battery electrolyte design principles, tuning Li<sup>+</sup> solvation structure is an effective way to connect electrolyte chemistry with interfacial chemistry. Although recent proposed solvation tuning strategies are able to improve battery cyclability, a comprehensive strategy for electrolyte design remains imperative. Here, we report a solvation tuning strategy by utilizing molecular steric effect to create a "bulky coordinating" structure. Based on this strategy, the designed electrolyte generates an inorganic-rich solid electrolyte interphase (SEI) and cathode-electrolyte interphase (CEI), leading to excellent compatibility with both Li metal anodes and high-voltage cathodes. Under an ultrahigh voltage of 4.6 V, Li/NMC811 full-cells (<i>N</i>/<i>P</i> = 2.0) hold an 84.1% capacity retention over 150 cycles and industrial Li/NMC811 pouch cells realize an energy density of 495 Wh kg<sup>-1</sup>. This study provides innovative insights into Li<sup>+</sup> solvation tuning for electrolyte engineering and offers a promising path toward developing high-energy Li metal batteries.
57
Pathways for practical high-energy long-cycling lithium metal batteries
Jun Liu, Zhenan Bao, Yi Cui et al. · Nature Energy · 2019 · 3.2K citations · Full text
High rate and stable cycling of lithium metal anode
Jiangfeng Qian, Wesley A. Henderson, Wu Xu et al. · Nature Communications · 2015 · 2.4K citations · Full text
Advances and issues in developing salt-concentrated battery electrolytes
Yuki Yamada, Jianhui Wang, Seongjae Ko et al. · Nature Energy · 2019 · 1.7K citations
Challenges and opportunities towards fast-charging battery materials
Yayuan Liu, Yangying Zhu, Yi Cui · Nature Energy · 2019 · 1.7K citations · Full text