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Structural phase transition, precursory electronic anomaly, and strong-coupling superconductivity in quasi-skutterudite (Sr1−x Ca x )3Ir4Sn13 and Ca3Rh4Sn13.

Authors :
Jun Luo
Jie Yang
S Maeda
Zheng Li
Guo-Qing Zheng
Source :
Chinese Physics B; July2018, Vol. 27 Issue 7, p1-1, 1p
Publication Year :
2018

Abstract

The interplay between superconductivity and structural phase transition has attracted enormous interest in recent years. For example, in Fe-pnictide high temperature superconductors, quantum fluctuations in association with structural phase transition have been proposed to lead to many novel physical properties and even the superconductivity itself. Here we report a finding that the quasi-skutterudite superconductors (Sr<subscript>1−x</subscript>Ca<subscript>x</subscript>)<subscript>3</subscript>Ir<subscript>4</subscript>Sn<subscript>13</subscript> (x = 0, 0.5, 1) and Ca<subscript>3</subscript>Rh<subscript>4</subscript>Sn<subscript>13</subscript> show some unusual properties similar to the Fe-pnictides, through <superscript>119</superscript>Sn nuclear magnetic resonance (NMR) measurements. In (Sr<subscript>1−x</subscript>Ca<subscript>x</subscript>)<subscript>3</subscript>Ir<subscript>4</subscript>Sn<subscript>13</subscript>, the NMR linewidth increases below a temperature T* that is higher than the structural phase transition temperature T<subscript>s</subscript>. The spin-lattice relaxation rate (1/T<subscript>1</subscript>) divided by temperature (T), 1/T<subscript>1</subscript>T and the Knight shift K increase with decreasing T down to T*, but start to decrease below T*, and followed by more distinct changes at T<subscript>s</subscript>. In contrast, none of the anomalies is observed in Ca<subscript>3</subscript>Rh<subscript>4</subscript>Sn<subscript>13</subscript> that does not undergo a structural phase transition. The precursory phenomenon above the structural phase transition resembles that occurring in Fe-pnictides. In the superconducting state of Ca<subscript>3</subscript>Ir<subscript>4</subscript>Sn<subscript>13</subscript>, 1/T<subscript>1</subscript> decays as exp(−Δ/k<subscript>B</subscript>T) with a large gap Δ = 2.21k<subscript>B</subscript>T<subscript>c</subscript>, yet without a Hebel–Slichter coherence peak, which indicates strong-coupling superconductivity. Our results provide new insight into the relationship between superconductivity and the electronic-structure change associated with structural phase transition. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
16741056
Volume :
27
Issue :
7
Database :
Complementary Index
Journal :
Chinese Physics B
Publication Type :
Academic Journal
Accession number :
130727592
Full Text :
https://doi.org/10.1088/1674-1056/27/7/077401