Unconventional superconductivity in topological Kramers nodal-line semimetals
暂无分享,去创建一个
Jianzhou Zhao | T. Shang | E. Pomjakushina | D. Gawryluk | M. Shi | T. Shiroka | Hui Zhang | Xiaoyan Zhu | Junzhang Ma | Yang Xu | Lunhui Hu | Qing-Feng Zhan | Zhixuan Zhen | Bocheng Yu | M. Shi | B. Yu | T. Shiroka
[1] M. O. Ajeesh,et al. Spin-triplet superconductivity in Weyl nodal-line semimetals , 2022, npj Quantum Materials.
[2] S. Ghosh,et al. Chiral singlet superconductivity in the weakly correlated metal LaPt3P , 2020, Nature Communications.
[3] S. P,et al. Superconducting properties of the non-centrosymmetric superconductors TaXSi (X = Re, Ru) , 2020, 2012.12596.
[4] Xiao Yan Xu,et al. Kramers nodal line metals , 2020, Nature Communications.
[5] S. Ghosh,et al. Time-reversal symmetry breaking in superconductors through loop supercurrent order , 2018, 1803.02618.
[6] C. Baines,et al. Re1−xMox as an ideal test case of time-reversal symmetry breaking in unconventional superconductors , 2020, npj Quantum Materials.
[7] M. Bobnar,et al. Enhanced Tc and multiband superconductivity in the fully-gapped ReBe22 superconductor , 2019, New Journal of Physics.
[8] Claudia Felser,et al. A complete catalogue of high-quality topological materials , 2019, Nature.
[9] Yuqing He,et al. Catalogue of topological electronic materials , 2018, Nature.
[10] Feng Tang,et al. Comprehensive search for topological materials using symmetry indicators , 2019, Nature.
[11] Su-Yang Xu,et al. Topological quantum properties of chiral crystals , 2016, Nature Materials.
[12] A. Stoykov,et al. The new versatile general purpose surface-muon instrument (GPS) based on silicon photomultipliers for μSR measurements on a continuous-wave beam. , 2017, The Review of scientific instruments.
[13] Shik Shin,et al. Experimental evidence of hourglass fermion in the candidate nonsymmorphic topological insulator KHgSb , 2017, Science Advances.
[14] M. I. Aroyo,et al. Topological quantum chemistry , 2017, Nature.
[15] M. Salamon,et al. Superconductivity and spin–orbit coupling in non-centrosymmetric materials: a review , 2016, Reports on progress in physics. Physical Society.
[16] Claudia Felser,et al. Topological Materials: Weyl Semimetals , 2016, 1611.04182.
[17] Zhijun Wang,et al. Hourglass fermions , 2016, Nature.
[18] C. Kallin,et al. Chiral superconductors , 2015, Reports on progress in physics. Physical Society.
[19] X. Dai,et al. Observation of Weyl nodes and Fermi arcs in tantalum phosphide , 2015, Nature Communications.
[20] Su-Yang Xu,et al. Discovery of a Weyl fermion state with Fermi arcs in niobium arsenide , 2015, Nature Physics.
[21] Xianhui Chen. Experimental discovery of Weyl semimetal TaAs , 2015, Science China Materials.
[22] Shuang Jia,et al. Discovery of a Weyl fermion semimetal and topological Fermi arcs , 2015, Science.
[23] M. Blakeley,et al. Observation of broken time-reversal symmetry in the heavy-fermion superconductor UPt3 , 2014, Science.
[24] A. Suter,et al. Musrfit: A Free Platform-Independent Framework for μSR Data Analysis , 2011, 1111.1569.
[25] Yukio Tanaka,et al. Theoretical aspects of Andreev spectroscopy and tunneling spectroscopy in non-centrosymmetric superconductors: a topical review , 2010, 1001.2486.
[26] Stefano de Gironcoli,et al. QUANTUM ESPRESSO: a modular and open-source software project for quantum simulations of materials , 2009, Journal of physics. Condensed matter : an Institute of Physics journal.
[27] Paul Scherrer Institut,et al. Comparison of different methods for analyzing μSR line shapes in the vortex state of type-II superconductors , 2008, Journal of physics. Condensed matter : an Institute of Physics journal.
[28] T. Yagi,et al. Superconductivity of the ternary ruthenium compounds HfRuP and ZrRuX (X = P, As, Si or Ge) prepared at a high pressure , 1999 .
[29] Y. Maeno,et al. Time-reversal symmetry-breaking superconductivity in Sr2RuO4 , 1998, Nature.
[30] W. Barford,et al. The theory of the measurement of the London penetration depth in uniaxial type II superconductors by muon spin rotation , 1988 .
[31] G. Meisner,et al. Superconducting equiatomic ternary transition metal arsenides , 1983 .