Granularity mediated multiple reentrances with negative magnetoresistance in disordered TiN thin films

Granular superconductors are the common examples of experimentally accessible model systems which can be used to explore various fascinating quantum phenomena that are fundamentally important and technologically relevant. One such phenomenon is the occurrence of reentrant resistive states in granula...

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Veröffentlicht in:Scientific reports 2023-12, Vol.13 (1), p.22701-22701, Article 22701
Hauptverfasser: Yadav, Sachin, Aloysius, R. P., Gupta, Govind, Sahoo, Sangeeta
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Sprache:eng
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Zusammenfassung:Granular superconductors are the common examples of experimentally accessible model systems which can be used to explore various fascinating quantum phenomena that are fundamentally important and technologically relevant. One such phenomenon is the occurrence of reentrant resistive states in granular superconductors. Here, we report the observation of multiple reentrant resistive states for a disordered TiN thin film in its temperature and magnetic field dependent resistance measurements, R ( T ) and R ( B ), respectively. At each of the peak-temperatures corresponding to the zero-field R ( T ), a resistance peak appears in the R ( B ) around zero field which leads to a negative magnetoresistance (MR) region in its surrounding. These low-field negative MR regions appear for both perpendicular and parallel field directions with relatively higher amplitude and larger width for the parallel field. By adopting a granularity-based model, we show that the superconducting fluctuations in granular superconductors may lead to the observed reentrant states and the corresponding negative MR. Here, we propose that the reduction in the density of states in the fermionic channel due to the formation of Cooper pairs leads to the reentrant resistive state and the competition between the conduction processes in the single particle and Cooper channels result into the multiple resistive reentrances.
ISSN:2045-2322
2045-2322
DOI:10.1038/s41598-023-50091-7