On the isotope effect in compressed superconducting HS and DS
arXiv:1703.04034 · doi:10.1088/1361-6668/aa5f3c
Abstract
A maximum superconductive transition temperature = 203.5 K has recently been reported for a sample of the binary compound tri-hydrogen sulfide (HS) prepared at high pressure and with room temperature annealing. Measurements of for HS and its deuterium counterpart DS have suggested a mass isotope effect exponent with anomalous enhancements for reduced applied pressures. While widely cited for evidence of phonon-based superconductivity, the measured is shown to exhibit important dependences on the quality and character of the HS and DS materials under study; examination of resistance versus temperature data shows that variations in and apparent are strongly correlated with residual resistance ratio, indicative of sensitivity to metallic order. Correlations also extend to the fractional widths of the superconducting transitions. Using resistance data to quantify and compensate for the evident materials differences between HS and DS samples, a value of = 0.043 0.140 is obtained. Thus, when corrected for the varying levels of disorder, the experimental upper limit (0.183) lies well below derived in phonon-based theories.
8 pages, 3 figures
References in corpus (3)
- Hydrogen sulphide at high pressure: a strongly-anharmonic phonon-mediated superconductor
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- Debye temperature in LaHx-LaDy superconductors
- Advanced McMillan's equation and its application for the analysis of highly-compressed superconductors
- Effect of van Hove singularity on the isotope effect and critical temperature of HS hydride superconductor as a function of pressure