Unconventional Scaling of the Superfluid Density with the Critical Temperature in Transition Metal Dichalcogenides
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We report on muon spin rotation experiments probing the magnetic penetration depth λ() in the layered superconductors in 2H-NbSe and 4H-NbSe. The current results, along with our earlier findings on 1T'-MoTe (Guguchia ), demonstrate that the superfluid density scales linearly with in the three transition metal dichalcogenide superconductors. Upon increasing pressure, we observe a substantial increase of the superfluid density in 2H-NbSe, which we find to correlate with . The correlation deviates from the abovementioned linear trend. A similar deviation from the Uemura line was also observed in previous pressure studies of optimally doped cuprates. This correlation between the superfluid density and is considered a hallmark feature of unconventional superconductivity. Here, we show that this correlation is an intrinsic property of the superconductivity in transition metal dichalcogenides, whereas the ratio / is approximately a factor of 20 lower than the ratio observed in hole-doped cuprates. We, furthermore, find that the values of the superconducting gaps are insensitive to the suppression of the charge density wave state.
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