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  Magnetic order and crystalline electric field excitations of the quantum critical heavy-fermion ferromagnet CeRh6Ge4

Shu, J. W., Adroja, D. T., Hillier, A. D., Zhang, Y. J., Chen, Y. X., Shen, B., et al. (2021). Magnetic order and crystalline electric field excitations of the quantum critical heavy-fermion ferromagnet CeRh6Ge4. Physical Review B, L140411, pp. 1-6. doi:10.1103/PhysRevB.104.L140411.

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Shu, J. W.1, Autor
Adroja, D. T.1, Autor
Hillier, A. D.1, Autor
Zhang, Y. J.1, Autor
Chen, Y. X.1, Autor
Shen, B.1, Autor
Orlandi, F.1, Autor
Walker, H. C.1, Autor
Liu, Y.1, Autor
Cao, C.1, Autor
Steglich, F.2, Autor           
Yuan, H. Q.1, Autor
Smidman, M.1, Autor
Affiliations:
1External Organizations, ou_persistent22              
2Physics of Correlated Matter, Max Planck Institute for Chemical Physics of Solids, Max Planck Society, ou_1863445              

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Schlagwörter: Cerium compounds, Excited states, Ferromagnetic materials, Ferromagnetism, Germanium alloys, Germanium compounds, Ground state, Hydrostatic pressure, Magnetic susceptibility, Magnetocrystalline anisotropy, Magnets, Neutron scattering, Organometallics, Single crystals, Superconducting materials, Anomalous behavior, Coherent oscillations, Crystalline electric fields, Electric field excitation, Heavy-fermion, Hybridisation, Magnetic Bragg peaks, Magnetic orders, Quantum critical, Quantum-critical point, Electric fields
 Zusammenfassung: CeRh6Ge4 is an unusual example of a stoichiometric heavy fermion ferromagnet, which can be cleanly tuned by hydrostatic pressure to a quantum critical point. To understand the origin of this anomalous behavior, we have characterized the magnetic ordering and crystalline electric field (CEF) scheme of this system. While magnetic Bragg peaks are not resolved in neutron powder diffraction, coherent oscillations are observed in zero-field μSR below TC, which are consistent with in-plane ferromagnetic ordering consisting of reduced Ce moments. From analyzing the magnetic susceptibility and inelastic neutron scattering, we propose a CEF-level scheme which accounts for the easy-plane magnetocrystalline anisotropy, where the low lying first excited CEF exhibits significantly stronger hybridization than the ground state. These results suggest that the orbital anisotropy of the ground state and low-lying excited state doublets are important for realizing anisotropic electronic coupling between the f and conduction electrons, which gives rise to the highly anisotropic hybridization observed in photoemission experiments. © 2021 American Physical Society.

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Sprache(n): eng - English
 Datum: 2021-10-292021-10-29
 Publikationsstatus: Erschienen
 Seiten: -
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 Art der Begutachtung: -
 Identifikatoren: DOI: 10.1103/PhysRevB.104.L140411
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Titel: Physical Review B
  Kurztitel : Phys. Rev. B
Genre der Quelle: Zeitschrift
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Ort, Verlag, Ausgabe: Woodbury, NY : American Physical Society
Seiten: - Band / Heft: - Artikelnummer: L140411 Start- / Endseite: 1 - 6 Identifikator: ISSN: 1098-0121
CoNE: https://pure.mpg.de/cone/journals/resource/954925225008