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Breaking solvation dominance of ethylene carbonate via molecular charge engineering enables lower temperature battery.


ABSTRACT: Low temperatures severely impair the performance of lithium-ion batteries, which demand powerful electrolytes with wide liquidity ranges, facilitated ion diffusion, and lower desolvation energy. The keys lie in establishing mild interactions between Li+ and solvent molecules internally, which are hard to achieve in commercial ethylene-carbonate based electrolytes. Herein, we tailor the solvation structure with low-ε solvent-dominated coordination, and unlock ethylene-carbonate via electronegativity regulation of carbonyl oxygen. The modified electrolyte exhibits high ion conductivity (1.46 mS·cm-1) at -90 °C, and remains liquid at -110 °C. Consequently, 4.5 V graphite-based pouch cells achieve ~98% capacity over 200 cycles at -10 °C without lithium dendrite. These cells also retain ~60% of their room-temperature discharge capacity at -70 °C, and miraculously retain discharge functionality even at ~-100 °C after being fully charged at 25 °C. This strategy of disrupting solvation dominance of ethylene-carbonate through molecular charge engineering, opens new avenues for advanced electrolyte design.

SUBMITTER: Chen Y 

PROVIDER: S-EPMC10721867 | biostudies-literature | 2023 Dec

REPOSITORIES: biostudies-literature

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Breaking solvation dominance of ethylene carbonate via molecular charge engineering enables lower temperature battery.

Chen Yuqing Y   He Qiu Q   Zhao Yun Y   Zhou Wang W   Xiao Peitao P   Gao Peng P   Tavajohi Naser N   Tu Jian J   Li Baohua B   He Xiangming X   Xing Lidan L   Fan Xiulin X   Liu Jilei J  

Nature communications 20231214 1


Low temperatures severely impair the performance of lithium-ion batteries, which demand powerful electrolytes with wide liquidity ranges, facilitated ion diffusion, and lower desolvation energy. The keys lie in establishing mild interactions between Li<sup>+</sup> and solvent molecules internally, which are hard to achieve in commercial ethylene-carbonate based electrolytes. Herein, we tailor the solvation structure with low-ε solvent-dominated coordination, and unlock ethylene-carbonate via ele  ...[more]

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