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Observation of Microscopic Domain Effects in the Metal-Insulator Transition of Thin-Film NdNiO(3).

PubMed
Authors: Nathwani LS, Ruperto A, Vallipuram A, Jiang AY, Pan GA, Segedin DF, Turkiewicz AB, Brooks CM, Mason JA, Song Q, Mundy JA

Year

2026

Paper ID

35463

Status

Peer-reviewed

Abstract Read

~2 min

Abstract Words

138

Citations

0

Abstract

Perovskite oxides display correlated electrical, magnetic, and thermal properties that can be further tuned in the thin-film limit, making them contenders for next-generation electronics. Measuring thermal transport in thin films is challenging, because traditional techniques are dominated by the substrate. Here, frequency-domain thermoreflectance (FDTR) of an epitaxial NdNiO thin film reveals a sharp change in out-of-plane thermal conductivity across the metal-insulator transition. Complementary frequency-domain photoreflectance (FDPR) reveals a large change in ambipolar diffusivity of photoexcited carriers. While the in-plane electrical resistance shows large hysteresis, out-of-plane thermal and charge transport shows negligible hysteresis. We attribute this discrepancy to anisotropy in the percolation of nanoscale domains across the transition as the film thickness approaches the domain length scale. We establish FDTR and FDPR as sensitive probes of quantum material phase transitions and highlight NdNiO for thermal control and memory applications.

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  • Perovskite oxides display correlated electrical, magnetic, and thermal properties that can be further tuned in the thin-film limit, making them contenders for next-generation...

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Current Paper #35463 #68465 Bounding Eigenstate Overlap fro... #68440 Classical State Preparation for... #68437 Transition-state lattice modes ... #68423 Selective Fermi-Level Pinning: ...

External citation index: OpenAlex citation signal • updated 2026-06-10 21:24:53

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