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Observation of Kondo condensation in a degenerately doped silicon metalopen access

Authors
Im, H.[Im, H.]Lee, D.U.[Lee, D.U.]Jo, Y.[Jo, Y.]Kim, J.[Kim, J.]Chong, Y.[Chong, Y.]Song, W.[Song, W.]Kim, H.[Kim, H.]Kim, E.K.[Kim, E.K.]Yuk, T.[Yuk, T.]Sin, S.-J.[Sin, S.-J.]Moon, S.[Moon, S.]Prance, J.R.[Prance, J.R.]Pashkin, Y.A.[Pashkin, Y.A.]Tsai, J.-S.[Tsai, J.-S.]
Issue Date
6-Feb-2023
Publisher
Nature Research
Citation
Nature Physics, v.19, no.5, pp.676 - 681
Indexed
SCIE
SCOPUS
Journal Title
Nature Physics
Volume
19
Number
5
Start Page
676
End Page
681
URI
https://scholarworks.bwise.kr/skku/handle/2021.sw.skku/103409
DOI
10.1038/s41567-022-01930-3
ISSN
1745-2473
Abstract
When a magnetic moment is embedded in a metal, it captures nearby itinerant electrons to form a so-called Kondo cloud. When magnetic impurities are sufficiently dense that their individual clouds overlap with each other they are expected to form a correlated electronic ground state. This is known as Kondo condensation and can be considered a magnetic version of Bardeen–Cooper–Schrieffer pair formation. Here, we examine this phenomenon by performing electrical transport and high-precision tunnelling density-of-states spectroscopy measurements in a highly P-doped crystalline silicon metal in which disorder-induced localized magnetic moments exist. We detect the Kondo effect in the resistivity of the Si metal at temperatures below 2 K and an unusual pseudogap in the density of states with gap edge peaks below 100 mK. The pseudogap and peaks are tuned by applying an external magnetic field and transformed into a metallic Altshuler–Aronov gap associated with a paramagnetic disordered Fermi liquid phase. We interpret these observations as evidence of Kondo condensation followed by a transition to a disordered Fermi liquid. © 2023, The Author(s).
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