Unconventional Superconductivity Induced by Suppressing an Iron-Selenium-Based Mott Insulator CsFe_{4-x}Se_{4}

There are several FeSe based superconductors, including the bulk FeSe, monolayer FeSe thin film, intercalated K_{x}Fe_{2-y}Se_{2} and Li_{1-x}Fe_{x}OHFeSe, etc. Their normal states all show metallic behavior. The key player here is the FeSe layer, which exhibits the highest superconducting transitio...

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Main Authors: Jin Si, Guan-Yu Chen, Qing Li, Xiyu Zhu, Huan Yang, Hai-Hu Wen
Format: Article
Language:English
Published: American Physical Society 2020-10-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.10.041008
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spelling doaj-e64b9c4d7b344f5b92b0caf6ce6cadbd2020-11-25T03:58:58ZengAmerican Physical SocietyPhysical Review X2160-33082020-10-0110404100810.1103/PhysRevX.10.041008Unconventional Superconductivity Induced by Suppressing an Iron-Selenium-Based Mott Insulator CsFe_{4-x}Se_{4}Jin SiGuan-Yu ChenQing LiXiyu ZhuHuan YangHai-Hu WenThere are several FeSe based superconductors, including the bulk FeSe, monolayer FeSe thin film, intercalated K_{x}Fe_{2-y}Se_{2} and Li_{1-x}Fe_{x}OHFeSe, etc. Their normal states all show metallic behavior. The key player here is the FeSe layer, which exhibits the highest superconducting transition temperature in the form of monolayer thin film. Recently, a new FeSe based compound, CsFe_{4-x}Se_{4}, with the space group of Bmmm was found. Interestingly, the system shows a strong insulatorlike behavior, although it shares the same FeSe planes as other relatives. Density functional theory calculations indicate that it should be a metal, in sharp contrast with the experimental observations. Here, we report the emergence of unconventional superconductivity by applying pressure to suppress this insulatorlike behavior. At ambient pressure, the insulatorlike behavior cannot be modeled as a band insulator, but it can be described by the variable-range-hopping model for correlated systems. Furthermore, the specific heat down to 400 mK has been measured, and a significant residual coefficient γ_{0}=C/T|_{T}_{→0} is observed, which contrasts the insulatorlike state and suggests some quantum freedom of spin dynamics. By applying pressure, the insulatorlike behavior is gradually suppressed, and the system becomes a metal; finally, superconductivity is achieved at about 5.1 K. The superconducting transition strongly depends on magnetic field and applied current, indicating a fragile superfluid density. Our results suggest that the superconductivity is established by diluted Cooper pairs on top of a strong correlation background in CsFe_{4-x}Se_{4}.http://doi.org/10.1103/PhysRevX.10.041008
collection DOAJ
language English
format Article
sources DOAJ
author Jin Si
Guan-Yu Chen
Qing Li
Xiyu Zhu
Huan Yang
Hai-Hu Wen
spellingShingle Jin Si
Guan-Yu Chen
Qing Li
Xiyu Zhu
Huan Yang
Hai-Hu Wen
Unconventional Superconductivity Induced by Suppressing an Iron-Selenium-Based Mott Insulator CsFe_{4-x}Se_{4}
Physical Review X
author_facet Jin Si
Guan-Yu Chen
Qing Li
Xiyu Zhu
Huan Yang
Hai-Hu Wen
author_sort Jin Si
title Unconventional Superconductivity Induced by Suppressing an Iron-Selenium-Based Mott Insulator CsFe_{4-x}Se_{4}
title_short Unconventional Superconductivity Induced by Suppressing an Iron-Selenium-Based Mott Insulator CsFe_{4-x}Se_{4}
title_full Unconventional Superconductivity Induced by Suppressing an Iron-Selenium-Based Mott Insulator CsFe_{4-x}Se_{4}
title_fullStr Unconventional Superconductivity Induced by Suppressing an Iron-Selenium-Based Mott Insulator CsFe_{4-x}Se_{4}
title_full_unstemmed Unconventional Superconductivity Induced by Suppressing an Iron-Selenium-Based Mott Insulator CsFe_{4-x}Se_{4}
title_sort unconventional superconductivity induced by suppressing an iron-selenium-based mott insulator csfe_{4-x}se_{4}
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2020-10-01
description There are several FeSe based superconductors, including the bulk FeSe, monolayer FeSe thin film, intercalated K_{x}Fe_{2-y}Se_{2} and Li_{1-x}Fe_{x}OHFeSe, etc. Their normal states all show metallic behavior. The key player here is the FeSe layer, which exhibits the highest superconducting transition temperature in the form of monolayer thin film. Recently, a new FeSe based compound, CsFe_{4-x}Se_{4}, with the space group of Bmmm was found. Interestingly, the system shows a strong insulatorlike behavior, although it shares the same FeSe planes as other relatives. Density functional theory calculations indicate that it should be a metal, in sharp contrast with the experimental observations. Here, we report the emergence of unconventional superconductivity by applying pressure to suppress this insulatorlike behavior. At ambient pressure, the insulatorlike behavior cannot be modeled as a band insulator, but it can be described by the variable-range-hopping model for correlated systems. Furthermore, the specific heat down to 400 mK has been measured, and a significant residual coefficient γ_{0}=C/T|_{T}_{→0} is observed, which contrasts the insulatorlike state and suggests some quantum freedom of spin dynamics. By applying pressure, the insulatorlike behavior is gradually suppressed, and the system becomes a metal; finally, superconductivity is achieved at about 5.1 K. The superconducting transition strongly depends on magnetic field and applied current, indicating a fragile superfluid density. Our results suggest that the superconductivity is established by diluted Cooper pairs on top of a strong correlation background in CsFe_{4-x}Se_{4}.
url http://doi.org/10.1103/PhysRevX.10.041008
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