Xin Chen, Jiaxin Yan, Xingyu Wang, Shilin Xu, Haixia Yang, Yuanheng Wang, Chunyu Du, Yulin Ma, Chuankai Fu, Pengjian Zuo
Despite competitive room-temperature performance, sodium-ion batteries suffer from sluggish kinetics and unstable interphases at ultralow temperatures. Herein, a single-ether (diethylene glycol dibutyl ether, DGDE)-based electrolyte featuring a spatially heterogeneous solvation structure across both the bulk and interfacial regions is successfully constructed by introducing a strongly polar sulfonate ester additive, 2,2,2‑trifluoroethyl trifluoromethanesulfonate (TTMS). In the bulk, DGDE chelates Na+ via its multiple coordination sites to form a solvent‑separated ion pair dominated solvation structure, thereby enhancing ion dissociation and ionic conductivity. At the electrode-electrolyte interface, TTMS preferentially adsorbs onto the cathode surface, reconstructing the electric double layer into a compact, anion-rich configuration dominated by contact ion pairs and aggregates. Meanwhile, TTMS in the inner Helmholtz plane provides desolvation-active sites, lowering the charge-transfer barrier and enabling the formation of a robust, inorganic-rich interphase. This spatially heterogeneous solvation structure enables the decoupling of fast bulk ion transport and rapid interface desolvation. Consequently, at -40°C, the Na||NaNi1/3Fe1/3Mn1/3O2 cell with the optimized electrolyte delivers an initial specific capacity of 109.9 mAh g-1 and sustains reversible cycling for 140 cycles with a capacity retention of 87.3%. Moreover, the cell demonstrates reliable electrochemical operation over a wide-temperature range from -60°C to 55°C.