TY - JOUR
T1 - Discovery of Nodal-Line Superconductivity in Chiral Crystals
AU - Shang, Tian
AU - Zhao, Jianzhou
AU - Hu, Lun Hui
AU - Wu, Weikang
AU - Xia, Keqi
AU - Ajeesh, Mukkattu O.
AU - Nicklas, Michael
AU - Xu, Yang
AU - Zhan, Qingfeng
AU - Gawryluk, Dariusz J.
AU - Shi, Ming
AU - Shiroka, Toni
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025/10/29
Y1 - 2025/10/29
N2 - Chiral crystals, whose key feature is the structural handedness, host exotic quantum phenomena driven by the interplay of band topology, spin-orbit coupling (SOC), and electronic correlations. Due to the limited availability of suitable chiral-crystal materials, their unconventional superconductivity (SC) remains largely unexplored. Here, the discovery of unconventional SC in the La(Rh,Ir)Si family of materials is reported by combining muon-spin spectroscopy, band-structure calculations, and perturbation theory. This family, characterized by a double-helix chiral structure, hosts exotic multifold fermions that are absent in other topological chiral crystals. While LaRhSi behaves as a fully-gapped superconductor, the substitution of 4d-Rh by 5d-Ir significantly enhances the SOC and leads to the emergence of topological nodal-line SC in LaIrSi. The developed model shows that the nodal-line SC arises from an isotropic SOC with a specific strength. Such an exotic mechanism expands the conventional understanding of material candidates for unconventional SC, which typically rely on a significantly anisotropic SOC to promote the triplet pairing. The current work establishes a new type of phase diagram, which provides a comprehensive roadmap for identifying and engineering unconventional SC in chiral crystals. Furthermore, it calls for renewed investigations of unconventional SC in other widely studied superconductors with a chiral structure.
AB - Chiral crystals, whose key feature is the structural handedness, host exotic quantum phenomena driven by the interplay of band topology, spin-orbit coupling (SOC), and electronic correlations. Due to the limited availability of suitable chiral-crystal materials, their unconventional superconductivity (SC) remains largely unexplored. Here, the discovery of unconventional SC in the La(Rh,Ir)Si family of materials is reported by combining muon-spin spectroscopy, band-structure calculations, and perturbation theory. This family, characterized by a double-helix chiral structure, hosts exotic multifold fermions that are absent in other topological chiral crystals. While LaRhSi behaves as a fully-gapped superconductor, the substitution of 4d-Rh by 5d-Ir significantly enhances the SOC and leads to the emergence of topological nodal-line SC in LaIrSi. The developed model shows that the nodal-line SC arises from an isotropic SOC with a specific strength. Such an exotic mechanism expands the conventional understanding of material candidates for unconventional SC, which typically rely on a significantly anisotropic SOC to promote the triplet pairing. The current work establishes a new type of phase diagram, which provides a comprehensive roadmap for identifying and engineering unconventional SC in chiral crystals. Furthermore, it calls for renewed investigations of unconventional SC in other widely studied superconductors with a chiral structure.
KW - nodal-line superconductivity
KW - spin-orbit coupling
KW - topological chiral crystals
KW - unconventional superconductivity
UR - https://www.scopus.com/pages/publications/105013769950
U2 - 10.1002/adma.202511385
DO - 10.1002/adma.202511385
M3 - 文章
AN - SCOPUS:105013769950
SN - 0935-9648
VL - 37
JO - Advanced Materials
JF - Advanced Materials
IS - 43
M1 - e11385
ER -