Experimental evidence for bipolaron condensation as a mechanism for the metal-insulator transition in rare-earth nickelates

Many-body effects produce deviations from the predictions of conventional band theory in quantum materials, leading to strongly correlated phases with insulating or bad metallic behavior. One example is the rare-earth nickelates RNiO3, which undergo metal-to-insulator transitions (MITs) whose origin...

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Bibliographic Details
Published inNature communications Vol. 9; no. 1
Main Authors Shamblin, Jacob, Heres, Maximilian, Zhou, Haidong, Sangoro, Joshua, Lang, Maik, Neuefeind, Joerg, Alonso, J. A., Johnston, Steven
Format Journal Article
LanguageEnglish
Published United States Nature Publishing Group 08.01.2018
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Summary:Many-body effects produce deviations from the predictions of conventional band theory in quantum materials, leading to strongly correlated phases with insulating or bad metallic behavior. One example is the rare-earth nickelates RNiO3, which undergo metal-to-insulator transitions (MITs) whose origin is debated. Here, we combine total neutron scattering and broadband dielectric spectroscopy experiments to study and compare carrier dynamics and local crystal structure in LaNiO3 and NdNiO3. We find that the local crystal structure of both materials is distorted in the metallic phase, with slow, thermally activated carrier dynamics at high temperature. We further observe a sharp change in conductivity across the MIT in NdNiO3, accompanied by slight differences in the carrier hopping time. Here, these results suggest that changes in carrier concentration drive the MIT through a polaronic mechanism, where the (bi)polaron liquid freezes into the insulating phase across the MIT temperature.
Bibliography:USDOE Office of Science (SC), Basic Energy Sciences (BES)
AC05-00OR22725
ISSN:2041-1723
2041-1723