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Superconducting energy scales and anomalous dissipative conductivity in thin films of molybdenum nitride

Julian Simmendinger, Uwe S. Pracht, Lena Daschke, Thomas Proslier, Jeffrey A. Klug, Martin Dressel, Marc Scheffler

DOI 10.1103/PhysRevB.94.064506 · Physical Review B

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Abstract

We report investigations of molybdenum nitride (MoN) thin films with different thickness and disorder and with superconducting transition temperature 9.89K≥Tc≥2.78K. Using terahertz frequency-domain spectroscopy we explore the normal and superconducting charge carrier dynamics for frequencies covering the range from 3 to 38cm−1 (0.1 to 1.1 THz). The superconducting energy scales, i.e., the critical temperature Tc, the pairing energy Δ, and the superfluid stiffness J, and the superfluid density ns can be well described within the Bardeen-Cooper-Schrieffer theory for conventional superconductors. At the same time, we find an anomalously large dissipative conductivity, which cannot be explained by thermally excited quasiparticles, but rather by a temperature-dependent normal-conducting fraction, persisting deep into the superconducting state. Our results on this disordered system constrain the regime, where discernible effects stemming from the disorder-induced superconductor-insulator transition possibly become relevant, to MoN films with a transition temperature lower than at least 2.78 K.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
MoN

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9.89Pressure not reportedunknown
MoN

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2.78Pressure not reportedunknown
MoN

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4.22Pressure not reportedunknown
MoN

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7.5Pressure not reportedunknown
MoN

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8.26Pressure not reportedunknown
MoN

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12Pressure not reportedunknown

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