Conductivity noise across temperature-driven transitions of rare-earth nickelate heterostructures

  • Gopi Nath Daptary
  • , Siddharth Kumar
  • , M. Kareev
  • , J. Chakhalian
  • , Aveek Bid
  • , S. Middey

Research output: Contribution to journalArticlepeer-review

11 Scopus citations

Abstract

The metal-insulator transition (MIT) of bulk rare-earth nickelates is accompanied by a simultaneous charge ordering (CO) transition. We have investigated low-frequency resistance fluctuations (noise) across the MIT and magnetic transition of [EuNiO3/LaNiO3] superlattices, where selective suppression of charge ordering has been achieved by mismatching the superlattice periodicity with the periodicity of charge ordering. We have observed that irrespective of the presence or absence of long-range CO, the noise magnitude is enhanced by several orders with a strong non-1/f (f=frequency) component when the system undergoes a MIT and magnetic transition. The higher-order statistics of resistance fluctuations reveal the presence of strong non-Gaussian components in both cases, further indicating inhomogeneous electrical transport arising from the electronic phase separation. Specifically, we find almost three orders of magnitude smaller noise in the insulating phase of the sample without long-range CO compared to the sample with CO. These findings suggest that digital synthesis can be a potential route to implement electronic transitions of complex oxides for device application.

Original languageEnglish
Article number125105
JournalPhysical Review B
Volume100
Issue number12
DOIs
StatePublished - 3 Sep 2019
Externally publishedYes

Bibliographical note

Publisher Copyright:
© 2019 American Physical Society.

Funding

S.M. acknowledges a IISc start up grant, a DST Nanomission grant (DST/NM/NS/2018/246), and a SERB Early Career Research Award (ECR/2018/001512) for financial support. A.B. thanks SERB, DST, for financial support. J.C. is supported by the Gordon and Betty Moore Foundation EPiQS Initiative through Grant No. GBMF4534.

FundersFunder number
Science and Engineering Research BoardECR/2018/001512
Gordon and Betty Moore FoundationGBMF4534
Indian Institute of ScienceDST/NM/NS/2018/246

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