<div class="csl-bib-body">
<div class="csl-entry">Fowlie, J., Georgescu, A. B., Suter, A., Mundet, B., Toulouse, C., Jaouen, N., Viret, M., Domínguez, C., Gibert, M., Salman, Z., Prokscha, T., Alexander, D. T. L., Kreisel, J., Georges, A., Millis, A. J., & Triscone, J.-M. (2023). Metal–insulator transition in composition-tuned nickel oxide films. <i>JOURNAL OF PHYSICS-CONDENSED MATTER</i>, <i>35</i>(30), 1–9. https://doi.org/10.1088/1361-648X/accd38</div>
</div>
-
dc.identifier.issn
0953-8984
-
dc.identifier.uri
http://hdl.handle.net/20.500.12708/207045
-
dc.description.abstract
Thin films of the solid solution Nd₁₋ₓLaxNiO₃ are grown in order to study the expected 0 K phase transitions at a specific composition. We experimentally map out the structural, electronic and magnetic properties as a function ofxand a discontinuous, possibly first order, insulator-metal transition is observed at low temperature whenx= 0.2. Raman spectroscopy and scanning transmission electron microscopy show that this is not associated with a correspondingly discontinuous global structural change. On the other hand, results from density functional theory (DFT) and combined DFT and dynamical mean field theory calculations produce a 0 K first order transition at around this composition. We further estimate the temperature-dependence of the transition from thermodynamic considerations and find that a discontinuous insulator-metal transition can be reproduced theoretically and implies a narrow insulator-metal phase coexistence withx. Finally, muon spin rotation (µSR) measurements suggest that there are non-static magnetic moments in the system that may be understood in the context of the first order nature of the 0 K transition and its associated phase coexistence regime.
-
dc.language.iso
en
-
dc.publisher
IOP PUBLISHING LTD
-
dc.relation.ispartof
JOURNAL OF PHYSICS-CONDENSED MATTER
-
dc.rights.uri
http://creativecommons.org/licenses/by/4.0/
-
dc.subject
heterostructure
en
dc.subject
oxide
en
dc.subject
phase transition
en
dc.subject
thin films
en
dc.title
Metal–insulator transition in composition-tuned nickel oxide films