Engineering
an Adaptive Inner Helmholtz Plane Enables
High-Voltage Sodium-Ion Batteries
Posted on 2025-05-10 - 13:37
Elevating the cutoff voltage of layered oxide cathodes
(LOCs) is
an indispensable way to achieve high-energy-density sodium-ion batteries
(SIBs). However, undesired interfacial parasitic reactions impede
the stable operation of LOCs at high voltages. Herein, we rationally
designed an adaptive inner Helmholtz plane (IHP) to regulate the interfacial
chemistry of the LOCs. An electron-deficient ligand was employed to
anchor with the anions and expel the free solvents within the IHP
of LOCs at high voltages, thereby preventing anionic decomposition
of the electrolytes and reducing HF generation. Moreover, the anion-anchored
IHP facilitates the formation of a robust inorganic-rich cathode electrolyte
interphase (CEI) on the LOCs. Benefiting from the tailored IHP, O3-NaNi1/3Fe1/3Mn1/3O2 (NNFMO) exhibits
significantly enhanced cycling stability at an ultrahigh voltage of
4.5 V. Our work paves a new way for regulating interfacial chemistry
by tailoring the electric double layer of LOCs for high-energy and
long-life SIBs.
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Chen, Zhigao; Du, Ruigeng; Liu, Chenyang; Kong, Ji; Li, Zihao; Ying, Yiran; et al. (2025). Engineering
an Adaptive Inner Helmholtz Plane Enables
High-Voltage Sodium-Ion Batteries. ACS Publications. Collection. https://doi.org/10.1021/acsenergylett.5c00593Â