On the Active Components in Crystalline Li-Nb-O and Li-Ta-O Coatings from First Principles
Hengning Chen, Zeyu Deng, Yuheng Li, Pieremanuele Canepa

TL;DR
This study uses first-principles calculations to analyze the phase composition, defect chemistry, and lithium-ion conduction in Li-Nb-O and Li-Ta-O coatings, informing better processing protocols for battery applications.
Contribution
It provides a detailed first-principles analysis of the multiphasic nature, defect chemistry, and ionic conductivity of Li-Nb-O and Li-Ta-O coatings, guiding improved fabrication methods.
Findings
Li-Nb-O and Li-Ta-O coatings are multiphasic, containing LiNbO3, Li3NbO4, LiTaO3, and Li3TaO4.
Defects such as lithium vacancies and antisite defects form charge-neutral complexes.
Li3NbO4 and Li3TaO4 phases exhibit adequate lithium-ion conduction.
Abstract
Layered-oxide (NMC) positive electrodes with high Nickel content, deliver high voltages and energy densities. However, a high nickel content, e.g., = 0.8 (NMC 811), can lead to high surface reactivity, which can trigger thermal runaway and gas generation. While claimed safer, all-solid-state batteries still suffer from high interfacial resistance. Here, we investigate niobate and tantalate coating materials, which can mitigate the interfacial reactivities in Li-ion and all-solid-state batteries. First-principles calculations reveal the multiphasic nature of Li-Nb-O and Li-Ta-O coatings, containing mixtures of and , or of and . The concurrence of several phases in Li-Nb-O or Li-Ta-O modulates the type of stable native defects in these coatings. Li-Nb-O and Li-Ta-O coating…
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Taxonomy
TopicsAdvancements in Battery Materials · Semiconductor materials and devices · Advanced Battery Materials and Technologies
