Abstract <p>The discovery of superconductivity in pressurized H<sub>3</sub>S [1] initiated a wide range of experimental and theoretical studies of compressed hydrides in which room-temperature superconductivity is in demand. Recently, a new milestone progress has been reported in the field, namely, direct measurements of the superconducting gap amplitude <InlineEquation ID="IEq1"> <EquationSource Format="TEX">\(\Delta \left( T \right)\)</EquationSource> <!--PhysMet2560089Talantsev-m1--> </InlineEquation> in highly compressed sulfur [46], H<sub>3</sub>S and D<sub>3</sub>S [47]. This study examines recent experimental XRD data reported on H<sub>3</sub>S [47] and found that H<sub>3</sub>S (at pressure <InlineEquation ID="IEq2"> <EquationSource Format="TEX">\(151{\;} &lt; P &lt; 158~\,{\text{GPa}}\)</EquationSource> <!--PhysMet2560089Talantsev-m2--> </InlineEquation>) exhibits nanosized grains with average size <i>D</i> = 24 ± 2 nm and remarkably low microstrain ε = 0.07 ± 0.04%. Further analysis of reported experimental data shows that the H<sub>3</sub>S has the Debye temperature <InlineEquation ID="IEq3"> <EquationSource Format="TEX">\({{{{\Theta }}}_{{\text{D}}}} = 1294 \pm 24\,~{\text{K}}\)</EquationSource> <!--PhysMet2560089Talantsev-m3--> </InlineEquation>, the electron–phonon coupling constant <InlineEquation ID="IEq4"> <EquationSource Format="TEX">\({{\gamma }_{{{\text{e}} - {\text{ph}}}}} = 2.30\)</EquationSource> <!--PhysMet2560089Talantsev-m4--> </InlineEquation>, specific heat jump at the superconducting transition temperature <InlineEquation ID="IEq5"> <EquationSource Format="TEX">\(\frac{{\Delta {{C}_{{{\text{el}}}}}}}{{\gamma {{T}_{{\text{c}}}}}} = 1.5 \pm 0.6\)</EquationSource> <!--PhysMet2560089Talantsev-m5--> </InlineEquation>, and gap-to-transition temperature ratio <InlineEquation ID="IEq6"> <EquationSource Format="TEX">\(\frac{{2\Delta \left( 0 \right)}}{{{{k}_{{\text{B}}}}{{T}_{{\text{c}}}}}} = 3.7 \pm 0.3\)</EquationSource> <!--PhysMet2560089Talantsev-m6--> </InlineEquation>. The derived values are in a good agreement with the values calculated by first-principles calculations.</p>

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Structural and Superconducting Parameters of Highly Compressed H3S

  • E. F. Talantsev

摘要

Abstract

The discovery of superconductivity in pressurized H3S [1] initiated a wide range of experimental and theoretical studies of compressed hydrides in which room-temperature superconductivity is in demand. Recently, a new milestone progress has been reported in the field, namely, direct measurements of the superconducting gap amplitude \(\Delta \left( T \right)\) in highly compressed sulfur [46], H3S and D3S [47]. This study examines recent experimental XRD data reported on H3S [47] and found that H3S (at pressure \(151{\;} < P < 158~\,{\text{GPa}}\) ) exhibits nanosized grains with average size D = 24 ± 2 nm and remarkably low microstrain ε = 0.07 ± 0.04%. Further analysis of reported experimental data shows that the H3S has the Debye temperature \({{{{\Theta }}}_{{\text{D}}}} = 1294 \pm 24\,~{\text{K}}\) , the electron–phonon coupling constant \({{\gamma }_{{{\text{e}} - {\text{ph}}}}} = 2.30\) , specific heat jump at the superconducting transition temperature \(\frac{{\Delta {{C}_{{{\text{el}}}}}}}{{\gamma {{T}_{{\text{c}}}}}} = 1.5 \pm 0.6\) , and gap-to-transition temperature ratio \(\frac{{2\Delta \left( 0 \right)}}{{{{k}_{{\text{B}}}}{{T}_{{\text{c}}}}}} = 3.7 \pm 0.3\) . The derived values are in a good agreement with the values calculated by first-principles calculations.