DOE OSTI · 3408027
Modulating the Lattice Stability in Sodium-Layered Oxide Cathodes through Inductive Effect
Abstract
Stability and safety of sodium layered oxide cathodes relative to lithium analogs remain a critical concern, yet its fundamental origin remains poorly understood. Here, we examine the role of sodium – oxygen bond ionicity in governing outgassing by introducing 5% lithium (Li), potassium (K), or both into layered NaNiO 2 (NNO), yielding Na 0.95 Li 0.05 NiO 2 , Na 0.95 K 0.05 NiO 2 , and Na 0.90 Li 0.05 K 0.05 NiO 2 . Online electrochemical mass spectrometry at 4.3 V reveals that K substitution increases gas evolution with similar charge capacity, whereas Li substitution reduces gas evolution by nearly 80% with only a 16% capacity decrease. Capacity-controlled experiments show that NNO must be charged to only 3.8 V (144 mA h g -1 ) to achieve gas evolution comparable to Na 0.95 Li 0.05 NiO 2 charged to 4.3 V (175 mA h g -1 ). These results demonstrate that tuning alkali-metal–oxygen bond ionicity through the inductive effect regulates Ni–O covalency, lattice oxygen stability, and interfacial reactivity, providing design guidance for safer sodium layered oxide cathodes.
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Liu, Chen [University of Texas at Austin, TX (United States)], Manthiram, Arumugam [University of Texas at Austin, TX (United States)] (ORCID:0000000302379563). 2026-07-22. Modulating the Lattice Stability in Sodium-Layered Oxide Cathodes through Inductive Effect. https://doi.org/10.1021/acsenergylett.6c01916
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