Anisotropy-driven quantum criticality in an intermediate valence system.
Authors
O'Farrell, Eoin CT
Matsumoto, Yosuke
Brando, Manuel
Küchler, Robert
Yoshida, Makoto
Sakakibara, Toshiro
Kono, Yohei
Shimura, Yasuyuki
Takigawa, Masashi
Nakatsuji, Satoru
Publication Date
2022-04-19Journal Title
Nat Commun
ISSN
2041-1723
Publisher
Springer Science and Business Media LLC
Volume
13
Issue
1
Language
en
Type
Article
This Version
VoR
Metadata
Show full item recordCitation
Grbić, M. S., O'Farrell, E. C., Matsumoto, Y., Kuga, K., Brando, M., Küchler, R., Nevidomskyy, A. H., et al. (2022). Anisotropy-driven quantum criticality in an intermediate valence system.. Nat Commun, 13 (1) https://doi.org/10.1038/s41467-022-29757-9
Description
Funder: U.S. National Science Foundation CAREER grant no. DMR-1350237
Funder: RCUK | Engineering and Physical Sciences Research Council (EPSRC); doi: https://doi.org/10.13039/501100000266
Funder: Royal Society; doi: https://doi.org/10.13039/501100000288
Funder: CIFAR as a Fellow of the CIFAR Quantum Materials Research Program
Abstract
Intermetallic compounds containing f-electron elements have been prototypical materials for investigating strong electron correlations and quantum criticality (QC). Their heavy fermion ground state evoked by the magnetic f-electrons is susceptible to the onset of quantum phases, such as magnetism or superconductivity, due to the enhanced effective mass (m*) and a corresponding decrease of the Fermi temperature. However, the presence of f-electron valence fluctuations to a non-magnetic state is regarded an anathema to QC, as it usually generates a paramagnetic Fermi-liquid state with quasiparticles of moderate m*. Such systems are typically isotropic, with a characteristic energy scale T0 of the order of hundreds of kelvins that require large magnetic fields or pressures to promote a valence or magnetic instability. Here we show the discovery of a quantum critical behaviour and a Lifshitz transition under low magnetic field in an intermediate valence compound α-YbAlB4. The QC origin is attributed to the anisotropic hybridization between the conduction and localized f-electrons. These findings suggest a new route to bypass the large valence energy scale in developing the QC.
Keywords
Article, /639/766/119/2795, /639/766/119/995, /639/766/119/997, article
Sponsorship
Deutsche Forschungsgemeinschaft (German Research Foundation) (BR 4110/1-1)
Welch Foundation (C-1818)
DOE | SC | Basic Energy Sciences (BES) (DE-SC0019331)
Identifiers
s41467-022-29757-9, 29757
External DOI: https://doi.org/10.1038/s41467-022-29757-9
This record's URL: https://www.repository.cam.ac.uk/handle/1810/336214
Rights
Licence:
http://creativecommons.org/licenses/by/4.0/
Statistics
Total file downloads (since January 2020). For more information on metrics see the
IRUS guide.
Recommended or similar items
The current recommendation prototype on the Apollo Repository will be turned off on 03 February 2023. Although the pilot has been fruitful for both parties, the service provider IKVA is focusing on horizon scanning products and so the recommender service can no longer be supported. We recognise the importance of recommender services in supporting research discovery and are evaluating offerings from other service providers. If you would like to offer feedback on this decision please contact us on: support@repository.cam.ac.uk