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dc.contributor.authorGati, Elena
dc.contributor.authorSchmidt, Burkhard
dc.contributor.authorBud’ko, Sergey L.
dc.contributor.authorMackenzie, Andrew P.
dc.contributor.authorCanfield, Paul C.
dc.date.accessioned2023-11-28T09:30:10Z
dc.date.available2023-11-28T09:30:10Z
dc.date.issued2023-11-20
dc.identifier296886595
dc.identifierb0b5f84b-72eb-4cff-86b0-f1b90d38be76
dc.identifier85177229791
dc.identifier.citationGati , E , Schmidt , B , Bud’ko , S L , Mackenzie , A P & Canfield , P C 2023 , ' Controlling crystal-electric field levels through symmetry-breaking uniaxial pressure in a cubic super heavy fermion ' , npj Quantum Materials , vol. 8 , 69 . https://doi.org/10.1038/s41535-023-00596-1en
dc.identifier.issn2397-4648
dc.identifier.otherJisc: 1495106
dc.identifier.otherpublisher-id: s41535-023-00596-1
dc.identifier.othermanuscript: 596
dc.identifier.urihttps://hdl.handle.net/10023/28773
dc.descriptionFinancial support by the Max Planck Society is gratefully acknowledged. In addition, we gratefully acknowledge funding through the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) through TRR 288–422213477 (project A10) and the SFB 1143 (project-id 247310070; project C09). Research in Dresden benefits from the environment provided by the DFG Cluster of Excellence ct.qmat (EXC 2147, project ID 390858940). Work at the Ames National Laboratory was supported by the U.S. Department of Energy, Office of Science, Basic Energy Sciences, Materials Sciences and Engineering Division. The Ames National Laboratory is operated for the U.S. Department of Energy by Iowa State University under Contract No. DEAC02-07CH11358.en
dc.description.abstractYbPtBi is one of the heavy-fermion systems with largest Sommerfeld coefficient γ and is thus classified as a ‘super’-heavy fermion material. In this work, we resolve the long-debated question about the hierarchy of relevant energy scales, such as crystal-electric field (CEF) levels, Kondo and magnetic ordering temperature, in YbPtBi. Through measurements of the a.c. elastocaloric effect and generic symmetry arguments, we identify an elastic level splitting that is unambiguously associated with the symmetry-allowed splitting of a quartet CEF level. This quartet, which we identify to be the first excited state at Δ/kB ≈ 1.6 K above the doublet ground state at ambient pressure, is well below the proposed Kondo temperature TK ≈ 10 K. Consequently, this analysis of the energy scheme can provide support models that predict that the heavy electron mass is a result of an enhanced degeneracy of the CEF ground state, i.e., a quasi-sextet in YbPtBi. At the same time, our study shows the potential of the a.c. elastocaloric effect to control and quantify strain-induced changes of the CEF schemes, opening a different route to disentangle the CEF energy scales from other relevant energy scales in correlated quantum materials.
dc.format.extent6
dc.format.extent1468573
dc.language.isoeng
dc.relation.ispartofnpj Quantum Materialsen
dc.subjectQC Physicsen
dc.subjectDASen
dc.subject.lccQCen
dc.titleControlling crystal-electric field levels through symmetry-breaking uniaxial pressure in a cubic super heavy fermionen
dc.typeJournal articleen
dc.contributor.institutionUniversity of St Andrews. School of Physics and Astronomyen
dc.contributor.institutionUniversity of St Andrews. Condensed Matter Physicsen
dc.identifier.doi10.1038/s41535-023-00596-1
dc.description.statusPeer revieweden


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