Angewandte Chemie International Edition · 2019 · 303 citations · 55 references
High-energy-density Li metal batteries suffer from a short lifespan under practical conditions, such as limited lithium, high loading cathode, and lean electrolytes, owing to the absence of appropriate solid electrolyte interphase (SEI). Herein, a sustainable SEI was designed rationally by combining fluorinated co-solvents with sustained-release additives for practical challenges. The intrinsic uniformity of SEI and the constant supplements of building blocks of SEI jointly afford to sustainable SEI. Specific spatial distributions and abundant heterogeneous grain boundaries of LiF, LiN<sub>x</sub> O<sub>y</sub> , and Li<sub>2</sub> O effectively regulate uniformity of Li deposition. In a Li metal battery with an ultrathin Li anode (33 μm), a high-loading LiNi<sub>0.5</sub> Co<sub>0.2</sub> Mn<sub>0.3</sub> O<sub>2</sub> cathode (4.4 mAh cm<sup>-2</sup> ), and lean electrolytes (6.1 g Ah<sup>-1</sup> ), 83 % of initial capacity retains after 150 cycles. A pouch cell (3.5 Ah) demonstrated a specific energy of 340 Wh kg<sup>-1</sup> for 60 cycles with lean electrolytes (2.3 g Ah<sup>-1</sup> ).
55
Lithium metal anodes for rechargeable batteries
Wu Xu, Jiulin Wang, Fei Ding et al. · Energy & Environmental Science · 2013 · 4.5K citations
“Water-in-salt” electrolyte enables high-voltage aqueous lithium-ion chemistries
Liumin Suo, Oleg Borodin, Tao Gao et al. · Science · 2015 · 3.6K citations
Electrolytes, Engineering, Chemistry +16
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