The broader development of the electric car for tomorrow's mobility requires the emergence of new fast-charging negative electrode materials to replace graphite in Li-ion batteries. In this area, the design of new compounds using innovative approaches could be the key to discovering new negative electrode materials that allow for faster charging and discharging processes. Here, we present a partially substituted AgNbO perovskite material by introducing lanthanum in the A-site. By creating two vacancies for every lanthanum introduced in the structure, the resulting general formula becomes AgLa□NbO (with x ≤ 0.20 and where □ is a A-site vacancy), allowing the insertion of lithium ions. The highly substituted AgLa□NbO oxide shows a specific capacity of 40 mAh.g at a low sweep rate (0.1 mV s). Interestingly, AgLa□NbO retains 64% of its capacity at a very high sweep rate (50 mV s) and about 95% after 800 cycles. Li MAS NMR experiments confirmed the insertion of lithium ions in these materials. A kinetic analysis of AgLa□NbO underlines the ability to store charge without solid-state ion-diffusion limitations. Furthermore, XRD indicates no structural modification of the compound when accommodating lithium ions, which can be considered as zero-strain material. This finding explains the interesting capacity retention observed after 800 cycles. This paper thus demonstrates an alternative approach to traditional insertion materials and identifies a different way to explore not-so common electrode materials for fast energy storage application.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9043289PMC
http://dx.doi.org/10.3389/fchem.2022.873783DOI Listing

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