电解质
法拉第效率
化学
稀释剂
电导率
分解
化学工程
乙醚
材料科学
二聚体
粘度
冰点
钠
分子
分析化学(期刊)
堆栈(抽象数据类型)
离子电导率
无机化学
离子液体
离子键合
电容
活化能
二甲醚
强电解质
作者
S Y Wang,Gang Wu,Chihao Zhao,Y Q Zhao,Huajing Li,Ziyang Kang,Jiayong Du,Zhengyuan Tang,Zilong Zheng,Xinwei Du,Wenwen Wang,Xiaotian Guo,Yue Gao
摘要
ABSTRACT Na‐ion batteries hold great promise for low‐temperature energy storage, but their performance is severely constrained by Na‐ion loss, electrolyte freezing, and elevated viscosity. While each issue demands carefully tailored additive molecules, their combined use often leads to performance interference and complicates the manufacturing process. To overcome these concurrent challenges, we report an organic molecule, NaB(C 2 H 5 ) 4 , designed via machine learning, which incorporates three functional components in a single entity: Na + to replenish sodium inventory, B(C 2 H 5 ) 3 as a low‐freezing‐point cosolvent, and C 4 H 10 as a viscosity‐reducing diluent. NaB(C 2 H 5 ) 4 undergoes complete decomposition below 4.0 V via a free‐radical cleavage pathway, as confirmed by NMR and mass spectrometry. The incorporation of this molecule reduces the freezing point of the ether electrolyte to −85.0°C, and when formulated in an ether‐based electrolyte at −60°C, it achieves an ionic conductivity of 0.61 mS cm −1 and a viscosity of 49.7 mPa s. As a result, the hard carbon||P2‐Na 2/3 Ni 1/3 Fe 1/3 Mn 1/3 O 2 pouch cell exhibits an improved initial Coulombic efficiency from 64.8% to 83.7%, along with 90.2% capacity retention over 200 cycles at −60°C.
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