TY - JOUR
T1 - Unconventional superconductivity in topological Kramers nodal-line semimetals
AU - Shang, Tian
AU - Zhao, Jianzhou
AU - Hu, Lun Hui
AU - Ma, Junzhang
AU - Gawryluk, Dariusz Jakub
AU - Zhu, Xiaoyan
AU - Zhang, Hui
AU - Zhen, Zhixuan
AU - Yu, Bocheng
AU - Xu, Yang
AU - Zhan, Qingfan
AU - Pomjakushina, Ekaterina
AU - Shi, Ming
AU - Shiroka, Toni
N1 - Publisher Copyright:
Copyright © 2022 The Authors, some rights reserved.
PY - 2022/10
Y1 - 2022/10
N2 - Crystalline symmetry is a defining factor of the electronic band topology in solids, where many-body interactions often induce a spontaneous breaking of symmetry. Superconductors lacking an inversion center are among the best systems to study such effects or even to achieve topological superconductivity. Here, we demonstrate that TRuSi materials (with T a transition metal) belong to this class. Their bulk normal states behave as three-dimensional Kramers nodal-line semimetals, characterized by large antisymmetric spin-orbit couplings and by hourglass-like dispersions. Our muon-spin spectroscopy measurements show that certain TRuSi compounds spontaneously break the time-reversal symmetry at the superconducting transition, while unexpectedly showing a fully gapped superconductivity. Their unconventional behavior is consistent with a unitary (s + ip) pairing, reflecting a mixture of spin singlets and spin triplets. By combining an intrinsic time-reversal symmetry-breaking superconductivity with nontrivial electronic bands, TRuSi compounds provide an ideal platform for investigating the rich interplay between unconventional superconductivity and the exotic properties of Kramers nodal-line/hourglass fermions.
AB - Crystalline symmetry is a defining factor of the electronic band topology in solids, where many-body interactions often induce a spontaneous breaking of symmetry. Superconductors lacking an inversion center are among the best systems to study such effects or even to achieve topological superconductivity. Here, we demonstrate that TRuSi materials (with T a transition metal) belong to this class. Their bulk normal states behave as three-dimensional Kramers nodal-line semimetals, characterized by large antisymmetric spin-orbit couplings and by hourglass-like dispersions. Our muon-spin spectroscopy measurements show that certain TRuSi compounds spontaneously break the time-reversal symmetry at the superconducting transition, while unexpectedly showing a fully gapped superconductivity. Their unconventional behavior is consistent with a unitary (s + ip) pairing, reflecting a mixture of spin singlets and spin triplets. By combining an intrinsic time-reversal symmetry-breaking superconductivity with nontrivial electronic bands, TRuSi compounds provide an ideal platform for investigating the rich interplay between unconventional superconductivity and the exotic properties of Kramers nodal-line/hourglass fermions.
UR - https://www.scopus.com/pages/publications/85141005654
U2 - 10.1126/sciadv.abq6589
DO - 10.1126/sciadv.abq6589
M3 - 文章
C2 - 36306356
AN - SCOPUS:85141005654
SN - 2375-2548
VL - 8
JO - Science Advances
JF - Science Advances
IS - 43
M1 - eabq6589
ER -