1,641 research outputs found

    Bulk superconductivity in Bi4O4S3 revealed by specific heat measurement

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    Specific heat experiments on a well-characterized polycrystalline sample of the BiS2 based superconductor Bi4O4S3 revealed that it shows a crear specific heat anomaly at about Tc = 4.4 K, consistent with Tc from the resistivity and dc susceptibility. This observation indicates the superconductivity of Bi4O4S3 to be bulk in nature

    Superconductivity in S-substituted FeTe

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    We have successfully synthesized a new superconducting phase of FeTe1-xSx with a PbO-type structure. It has the simplest crystal structure in iron-based superconductors. Superconducting transition temperature is about 10 K at x = 0.2. The upper critical field Hc2 was estimated to be ~70 T. The coherent length was calculated to be ~2.2 nm. Because FeTe1-xSx is composed of nontoxic elements, this material is a candidate for applications and will activate more and more research on iron-based superconductor.Comment: 13 pages, 10 figure

    Pressure study of the new iron-based superconductor K0.8Fe2Se2

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    We investigated pressure effects on transition temperature (Tc) of the new iron-based superconductor K0.8Fe2Se2 using a BeCu/NiCrAl hybrid-type clamped piston-cylinder cell. The Tc(onset) was 33K at 0.85 GPa. With increasing pressure, Tc(onset) gradually increased and reached 36.6 K at 2.03 GPa.Comment: 8 pages, 3 figure

    Alcoholic beverages induce superconductivity in FeTe1−x_{1-x}Sx_x

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    We found that hot alcoholic beverages were effective in inducing superconductivity in FeTe0.8_{0.8}S0.2_{.2}. Heating FeTe0.8_{0.8}S0.2_{.2} compound in various alcoholic beverages enhances the superconducting properties compared to pure water-ethanol mixture as a control. Heating with red wine for 24 hours leads to the largest shielding volume fraction of 62.4% and the highest zero resistivity temperature of 7.8 K. Some components present in alcoholic beverages, other than water and ethanol, have the ability to induce superconductivity in FeTe0.8_{0.8}S0.2_{.2} compound.Comment: 12 pages, 4 figures, accepted for publication in Supercond. Sci. Techno
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