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Two-dimensional heavy fermions in the van der Waals metal CeSiI

Authors :
Posey, Victoria A.
Turkel, Simon
Rezaee, Mehdi
Devarakonda, Aravind
Kundu, Asish K.
Ong, Chin Shen
Thinel, Morgan
Chica, Daniel G.
Vitalone, Rocco A.
Jing, Ran
Xu, Suheng
Needell, David R.
Meirzadeh, Elena
Feuer, Margalit L.
Jindal, Apoorv
Cui, Xiaomeng
Valla, Tonica
Thunström, Patrik
Yilmaz, Turgut
Vescovo, Elio
Graf, David
Zhu, Xiaoyang
Scheie, Allen
May, Andrew F.
Eriksson, Olle
Basov, D. N.
Dean, Cory R.
Rubio, Angel
Kim, Philip
Ziebel, Michael E.
Millis, Andrew J.
Pasupathy, Abhay N.
Roy, Xavier
Source :
Nature; January 2024, Vol. 625 Issue: 7995 p483-488, 6p
Publication Year :
2024

Abstract

Heavy-fermion metals are prototype systems for observing emergent quantum phases driven by electronic interactions1–6. A long-standing aspiration is the dimensional reduction of these materials to exert control over their quantum phases7–11, which remains a significant challenge because traditional intermetallic heavy-fermion compounds have three-dimensional atomic and electronic structures. Here we report comprehensive thermodynamic and spectroscopic evidence of an antiferromagnetically ordered heavy-fermion ground state in CeSiI, an intermetallic comprising two-dimensional (2D) metallic sheets held together by weak interlayer van der Waals (vdW) interactions. Owing to its vdW nature, CeSiI has a quasi-2D electronic structure, and we can control its physical dimension through exfoliation. The emergence of coherent hybridization of fand conduction electrons at low temperature is supported by the temperature evolution of angle-resolved photoemission and scanning tunnelling spectra near the Fermi level and by heat capacity measurements. Electrical transport measurements on few-layer flakes reveal heavy-fermion behaviour and magnetic order down to the ultra-thin regime. Our work establishes CeSiI and related materials as a unique platform for studying dimensionally confined heavy fermions in bulk crystals and employing 2D device fabrication techniques and vdW heterostructures12to manipulate the interplay between Kondo screening, magnetic order and proximity effects.

Details

Language :
English
ISSN :
00280836 and 14764687
Volume :
625
Issue :
7995
Database :
Supplemental Index
Journal :
Nature
Publication Type :
Periodical
Accession number :
ejs65227840
Full Text :
https://doi.org/10.1038/s41586-023-06868-x