Suppression of superconductivity by anisotropic strain near a nematic quantum critical point

被引:0
|
作者
Paul Malinowski
Qianni Jiang
Joshua J. Sanchez
Joshua Mutch
Zhaoyu Liu
Preston Went
Jian Liu
Philip J. Ryan
Jong-Woo Kim
Jiun-Haw Chu
机构
[1] University of Washington,Department of Physics
[2] University of Tennessee,Department of Physics and Astronomy
[3] Argonne National Laboratories,Advanced Photon Source
[4] Dublin City University,School of Physical Sciences
来源
Nature Physics | 2020年 / 16卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
In most unconventional and high-temperature superconductors, superconductivity emerges as a nearby symmetry-breaking phase is suppressed by chemical doping or pressure1–7. This has led to the belief that the fluctuations associated with the symmetry-breaking phase are beneficial, if not responsible, for the superconducting pairing8,9. A direct test to verify this hypothesis is to observe a decrease of the superconducting critical temperature (Tc) by applying the symmetry-breaking conjugate field that suppresses the dynamic fluctuations of the competing order. However, most of the competing phases in unconventional superconductors break translational symmetry, requiring a spatially modulated conjugate field that is difficult to realize experimentally. Here, we show that anisotropic strain, the conjugate field of nematicity, reduces the Tc of an iron pnictide. For optimally doped samples we show a fivefold reduction of Tc with less than one per cent of strain. For underdoped samples, Tc becomes zero yielding a fully metallic ground state. In addition to providing direct evidence of the role played by the nematic fluctuations in the formation of the superconducting state, these results demonstrate tunable mechanical control of a high-temperature superconductor, an important step forward for technological applications of superconductivity.
引用
收藏
页码:1189 / 1193
页数:4
相关论文
共 50 条
  • [41] Electron Mass Enhancement near a Nematic Quantum Critical Point in NaFe1-xCoxAs
    Wang, C. G.
    Li, Z.
    Yang, J.
    Xing, L. Y.
    Dai, G. Y.
    Wang, X. C.
    Jin, C. Q.
    Zhou, R.
    Zheng, Guo-qing
    PHYSICAL REVIEW LETTERS, 2018, 121 (16)
  • [42] DC resistivity near a nematic quantum critical point: Effects of weak disorder and acoustic phonons
    Vieira, Lucas E.
    de Carvalho, Vanuildo S.
    Freire, Hermann
    ANNALS OF PHYSICS, 2020, 419
  • [43] Superconductivity at low density near a ferroelectric quantum critical point: Doped SrTiO3
    Woelfle, Peter
    Balatsky, Alexander, V
    PHYSICAL REVIEW B, 2018, 98 (10)
  • [44] Odd-Parity Superconductivity near an Inversion Breaking Quantum Critical Point in One Dimension
    Ruhman, Jonathan
    Kozii, Vladyslav
    Fu, Liang
    PHYSICAL REVIEW LETTERS, 2017, 118 (22)
  • [45] Electrical resistivity across a nematic quantum critical point
    Licciardello, S.
    Buhot, J.
    Lu, J.
    Ayres, J.
    Kasahara, S.
    Matsuda, Y.
    Shibauchi, T.
    Hussey, N. E.
    NATURE, 2019, 567 (7747) : 213 - +
  • [46] The strain quantum critical point for superstripes
    Bianconi, A
    Di Castro, D
    Bianconi, G
    Saini, NL
    PHYSICS IN LOCAL LATTICE DISTORTIONS: FUNDAMENTALS AND NOVEL CONCEPTS LLD2K, 2001, 554 : 124 - 132
  • [47] Electrical resistivity across a nematic quantum critical point
    S. Licciardello
    J. Buhot
    J. Lu
    J. Ayres
    S. Kasahara
    Y. Matsuda
    T. Shibauchi
    N. E. Hussey
    Nature, 2019, 567 : 213 - 217
  • [48] Multiple intertwined pairing states and temperature-sensitive gap anisotropy for superconductivity at a nematic quantum-critical point
    Klein, Avraham
    Wu, Yi-Ming
    Chubukov, Andrey, V
    NPJ QUANTUM MATERIALS, 2019, 4 (1)
  • [49] Multiple intertwined pairing states and temperature-sensitive gap anisotropy for superconductivity at a nematic quantum-critical point
    Avraham Klein
    Yi-Ming Wu
    Andrey V. Chubukov
    npj Quantum Materials, 4
  • [50] Anomalous properties and coexistence of antiferromagnetism and superconductivity near a quantum critical point in rare-earth intermetallides
    Val'kov, V. V.
    Zlotnikov, A. O.
    JOURNAL OF EXPERIMENTAL AND THEORETICAL PHYSICS, 2013, 116 (05) : 817 - 822