Three-dimensional flat bands in pyrochlore metal CaNi2

被引:0
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作者
Joshua P. Wakefield
Mingu Kang
Paul M. Neves
Dongjin Oh
Shiang Fang
Ryan McTigue
S. Y. Frank Zhao
Tej N. Lamichhane
Alan Chen
Seongyong Lee
Sudong Park
Jae-Hoon Park
Chris Jozwiak
Aaron Bostwick
Eli Rotenberg
Anil Rajapitamahuni
Elio Vescovo
Jessica L. McChesney
David Graf
Johanna C. Palmstrom
Takehito Suzuki
Mingda Li
Riccardo Comin
Joseph G. Checkelsky
机构
[1] Massachusetts Institute of Technology,Department of Physics
[2] Max Planck POSTECH/Korea Research Initiative,Center for Complex Phase Materials
[3] Massachusetts Institute of Technology,Department of Nuclear Science and Engineering
[4] Pohang University of Science and Technology,Department of Physics
[5] Lawrence Berkeley National Laboratory,Advanced Light Source
[6] Brookhaven National Laboratory,National Synchrotron Light Source II
[7] Argonne National Laboratory,X
[8] National High Magnetic Field Laboratory,ray Science Division, Advanced Photon Source
[9] National High Magnetic Field Laboratory,Department of Physics
[10] LANL,undefined
[11] Toho University,undefined
来源
Nature | 2023年 / 623卷
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摘要
Electronic flat-band materials host quantum states characterized by a quenched kinetic energy. These flat bands are often conducive to enhanced electron correlation effects and emergent quantum phases of matter1. Long studied in theoretical models2–4, these systems have received renewed interest after their experimental realization in van der Waals heterostructures5,6 and quasi-two-dimensional (2D) crystalline materials7,8. An outstanding experimental question is if such flat bands can be realized in three-dimensional (3D) networks, potentially enabling new materials platforms9,10 and phenomena11–13. Here we investigate the C15 Laves phase metal CaNi2, which contains a nickel pyrochlore lattice predicted at a model network level to host a doubly-degenerate, topological flat band arising from 3D destructive interference of electronic hopping14,15. Using angle-resolved photoemission spectroscopy, we observe a band with vanishing dispersion across the full 3D Brillouin zone that we identify with the pyrochlore flat band as well as two additional flat bands that we show arise from multi-orbital interference of Ni d-electrons. Furthermore, we demonstrate chemical tuning of the flat-band manifold to the Fermi level that coincides with enhanced electronic correlations and the appearance of superconductivity. Extending the notion of intrinsic band flatness from 2D to 3D, this provides a potential pathway to correlated behaviour predicted for higher-dimensional flat-band systems ranging from tunable topological15 to fractionalized phases16.
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页码:301 / 306
页数:5
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