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Robust Quantum Griffiths Singularity at above 1.5 Kelvin in Nitride Thin Films

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arxiv 2211.05393 v1 pith:AF55MSF6 submitted 2022-11-10 cond-mat.supr-con

Robust Quantum Griffiths Singularity at above 1.5 Kelvin in Nitride Thin Films

classification cond-mat.supr-con
keywords temperaturefieldquantumscalingactivatedcriticaldynamicalexponent
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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abstract

Quantum Griffiths singularity (QGS), which is closely correlated with the quenched disorder, is characterized by the divergence of the dynamical critical exponent and the presence of activated scaling behavior. Typically such a quantum phenomenon is rather rare and only observed in extremely low temperatures. Here we report the experimental observation of a robust QGS in nitride thin films, NbN, which survives in a rather high temperature range. The electrical transport propertied were measured under the magnetic field up to 12 T. The field induced superconductor-metal transitions were observed with the continuously changed transition points with the decrease of temperature. The dynamical critical exponent based on the conventional power-law scaling reveals a divergent trend when approaching the the low temperature limit. Moreover, the temperature and field dependence of sheet resistance can be described by the activated scaling analysis in the temperature region up to 1.6 K $\leq T \leq$ 4.0 K. We argue that the robustness of QGS in the present system originates from the Pauli paramagnetic effect due to the strong coupling between the magnetic field and the spin degree of freedom.

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