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Observation of flat bands and Dirac cones in a pyrochlore lattice superconductor.

Authors :
Huang, Jianwei
Setty, Chandan
Deng, Liangzi
You, Jing-Yang
Liu, Hongxiong
Shao, Sen
Oh, Ji Seop
Guo, Yucheng
Zhang, Yichen
Yue, Ziqin
Yin, Jia-Xin
Hashimoto, Makoto
Lu, Donghui
Gorovikov, Sergey
Dai, Pengcheng
Denlinger, Jonathan D.
Allen, J. W.
Hasan, M. Zahid
Feng, Yuan-Ping
Birgeneau, Robert J.
Source :
NPJ Quantum Materials; 9/19/2024, Vol. 9 Issue 1, p1-10, 10p
Publication Year :
2024

Abstract

Emergent phases often appear when the electronic kinetic energy is comparable to the Coulomb interactions. One approach to seek material systems as hosts of such emergent phases is to realize localization of electronic wavefunctions due to the geometric frustration inherent in the crystal structure, resulting in flat electronic bands. Recently, such efforts have found a wide range of exotic phases in the two-dimensional kagome lattice, including magnetic order, time-reversal symmetry breaking charge order, nematicity, and superconductivity. However, the interlayer coupling of the kagome layers disrupts the destructive interference needed to completely quench the kinetic energy. Here we demonstrate that an interwoven kagome network—a pyrochlore lattice—can host a three dimensional (3D) localization of electron wavefunctions. Meanwhile, the nonsymmorphic symmetry of the pyrochlore lattice guarantees all band crossings at the Brillouin zone X point to be 3D gapless Dirac points, which was predicted theoretically but never yet observed experimentally. Through a combination of angle-resolved photoemission spectroscopy, fundamental lattice model and density functional theory calculations, we investigate the novel electronic structure of a Laves phase superconductor with a pyrochlore sublattice, CeRu<subscript>2</subscript>. We observe evidence of flat bands originating from the Ce 4f orbitals as well as flat bands from the 3D destructive interference of the Ru 4d orbitals. We further observe the nonsymmorphic symmetry-protected 3D gapless Dirac cone at the X point. Our work establishes the pyrochlore structure as a promising lattice platform to realize and tune novel emergent phases intertwining topology and many-body interactions. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
23974648
Volume :
9
Issue :
1
Database :
Complementary Index
Journal :
NPJ Quantum Materials
Publication Type :
Academic Journal
Accession number :
179739891
Full Text :
https://doi.org/10.1038/s41535-024-00683-x