Nodal fermions in a strongly spin-orbit coupled frustrated pyrochlore superconductor
Abstract
The pyrochlore lattice, a three-dimensional network of corner-sharing tetrahedra, is a promising material playground for correlated topological phases arising from the interplay between spin-orbit coupling (SOC) and electron-electron interactions. Due to its geometrically frustrated lattice structure, exotic correlated states on the pyrochlore lattice have been extensively studied using various spin Hamiltonians in the localized limit. On the other hand, the topological properties of the electronic structure in the pyrochlore lattice have rarely been explored, due to the scarcity of pyrochlore materials in the itinerant paramagnetic limit. Here, we explore the topological electronic band structure of pyrochlore superconductor RbBi using angle-resolved photoemission spectroscopy. Thanks to the strong SOC of the Bi pyrochlore network, we experimentally confirm the existence of three-dimensional (3D) massless Dirac fermions enforced by nonsymmorphic symmetry, as well as a 3D quadratic band crossing protected by cubic crystalline symmetry. Furthermore, we identify an additional 3D linear Dirac dispersion associated with band inversion protected by threefold rotation symmetry. These observations reveal the rich non-trivial band topology of itinerant pyrochlore lattice systems in the strong SOC regime. Through manipulation of electron correlations and SOC of the frustrated pyrochlore lattices, this material platform is a natural host for exotic phases of matter, including the fractionalized quantum spin Hall effect in the topological Mott insulator phase, as well as axion electrodynamics in the axion insulator phase.
Keywords
Cite
@article{arxiv.2402.04509,
title = {Nodal fermions in a strongly spin-orbit coupled frustrated pyrochlore superconductor},
author = {Dongjin Oh and Junha Kang and Yuting Qian and Shiang Fang and Mingu Kang and Chris Jozwiak and Aaron Bostwick and Eli Rotenberg and Joseph G. Checkelsky and Liang Fu and Tomasz Klimczuk and Michal J. Winiarski and Bohm-Jung Yang and Riccardo Comin},
journal= {arXiv preprint arXiv:2402.04509},
year = {2024}
}
Comments
18 pages, 4 figures