Strongly correlated perovskite lithium ion shuttles.
basic_science · Level V
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- Record sourced from PubMed, PMID 30104357.
- Also identified by DOI 10.1073/pnas.1805029115 and PMC identifier 6166818.
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Abstract
Solid-state ion shuttles are of broad interest in electrochemical devices, nonvolatile memory, neuromorphic computing, and biomimicry utilizing synthetic membranes. Traditional design approaches are primarily based on substitutional doping of dissimilar valent cations in a solid lattice, which has inherent limits on dopant concentration and thereby ionic conductivity. Here, we demonstrate perovskite nickelates as Li-ion shuttles with simultaneous suppression of electronic transport via Mott transition. Electrochemically lithiated SmNiO<sub>3</sub> (Li-SNO) contains a large amount of mobile Li<sup>+</sup> located in interstitial sites of the perovskite approaching one dopant ion per unit cell. A significant lattice expansion associated with interstitial doping allows for fast Li<sup>+</sup> conduction with reduced activation energy. We further present a generalization of this approach with results on other rare-earth perovskite nickelates as well as dopants such as Na<sup>+</sup> The results highlight the potential of quantum materials and emergent physics in design of ion conductors.