Yang Zhuo, Dai Yingying, Xie Zheng-Kun, Li Shao-Bo, Lei Yao-Jie, Chen Jian, Zhou Xunzhu, Hao Zhi-Qiang, Tan Xin, Li Lin, Lai Wei-Hong, Li Li, Chen Wei-Hua, Chou Shu-Lei
Institute for Carbon Neutralization Technology, College of Chemistry and Materials Engineering, Wenzhou University, Wenzhou 325035, China.
Laboratory of Advanced Materials, Shanghai Key Lab of Molecular Catalysis and Innovative Materials, Fudan University, Shanghai 200438, China.
Natl Sci Rev. 2024 Dec 23;12(3):nwae466. doi: 10.1093/nsr/nwae466. eCollection 2025 Mar.
Phosphonate-based electrolytes with the merits of low cost and intrinsic nonflammability are promising candidates to realize the safe operation of sodium-ion batteries. However, they generally suffer from poor interfacial chemistry because of the solvent-dominated solvation structure induced by the strong ion-dipole interactions between cations and phosphonate molecules. Herein, we report an electrolyte design strategy that selectively improves the competitive coordination of low-solvating-power molecules, achieving stable interfacial chemistry with a non-flammable, low-cost and fluorine-free electrolyte. By improving the ion-ion interaction between cation and anion, weakly coordinated molecules can enter the Na solvation shell, thereby promoting more adjustable and advantageous interfacial chemistry. As a result, the fluorine-free Prussian blue||hard carbon pouch cell, with a high cathode mass loading of ∼20 mg cm, reaches a high capacity retention with an energy density of over 221.7 Wh kg based on electrode mass and 115.1 Wh kg based on battery mass.
具有低成本和固有不燃性优点的膦酸盐基电解质是实现钠离子电池安全运行的有前途的候选材料。然而,由于阳离子与膦酸盐分子之间强烈的离子 - 偶极相互作用所诱导的以溶剂为主导的溶剂化结构,它们通常存在界面化学性质较差的问题。在此,我们报告一种电解质设计策略,该策略选择性地改善了低溶剂化能力分子的竞争配位,从而用一种不可燃、低成本且无氟的电解质实现了稳定的界面化学性质。通过改善阳离子与阴离子之间的离子 - 离子相互作用,弱配位分子可以进入钠溶剂化壳层,从而促进更具可调节性和优势的界面化学性质。结果,具有约20 mg cm高阴极质量负载的无氟普鲁士蓝||硬碳软包电池,基于电极质量达到了高容量保持率,能量密度超过221.7 Wh kg,基于电池质量达到了115.1 Wh kg。