Yi Li, Zheng Ma, Pushpendra Kumar, Honghong Liang, Fei Zhao, Akang Huang, Jia Wang, Wandi Wahyudi, Hui Zhu, Jiao Yin, Hongliang Xie, Qian Li, Jun Ming
Lithium-ion batteries (LIBs) face challenges in the stability and electrode compatibility of conventional electrolytes at high voltages and extreme temperatures. Here, we present an electrolyte design featuring a moderately dissociating solvation structure, achieved by combining lithium difluoro(oxalato)borate (LiDFOB) with ethyl propionate (EP). This formulation promotes the formation of abundant contact ion pairs (CIPs), which effectively weaken Li + –solvent interactions, enhance oxidative stability, and lower Li + desolvation energy. As a result, graphite || LiNi 0.8 Co 0.1 Mn 0.1 O 2 (NCM811) full cells deliver outstanding long-term cycling stability at 4.5 V (vs Li/Li + ) across a wide temperature range, retaining 94.2% capacity after 300 cycles at −20 °C and 92.5% after 100 cycles at 60 °C. An interfacial model reveals how the optimized solvation structure, governed by moderately dissociating Li + –anion interactions, enhances interfacial stability and cycling performance under demanding conditions. This work underscores the pivotal role of solvation structure engineering in advancing electrolyte stability in next-generation LIBs.