Multipolar order and excitations in rare-earth boride Kondo systems
Pith reviewed 2026-05-24 16:20 UTC · model grok-4.3
The pith
Degenerate crystal electric field states enable hidden multipolar orders such as antiferro-quadrupolar ordering in CeB6 and related borides.
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
Core claim
Fairly exotic states appear due to the hidden order of multipoles carried by degenerate CEF multiplets in addition to magnetic order present in many RB6 compounds. Most prominent are CeB6 and its La-diluted alloys which exhibit antiferro-quadrupolar and octupolar ordering enabled by the cubic Gamma8 quartet state. The associated collective excitations are multipolar waves with a dispersion characteristic for the underlying order and accessible by inelastic neutron scattering. This localized multipolar-moment picture is complemented by the itinerant Kondo-lattice approach in which collective spin exciton modes inside the hybridization gap around symmetry points of the Brillouin zone may occur
What carries the argument
The cubic Gamma8 quartet state of the crystal electric field, which carries the multipole moments that enable antiferro-quadrupolar and octupolar ordering.
If this is right
- Multipolar waves exhibit dispersions set by the type of underlying multipolar order and are detectable by inelastic neutron scattering.
- Collective spin exciton modes appear inside the hybridization gap at symmetry points of the Brillouin zone in the Kondo-lattice description.
- SmB6 emerges as a candidate for a strongly correlated topological insulator within the itinerant picture.
- The same multipolar ordering mechanism operates in La-diluted CeB6 alloys as in the pure compound.
Where Pith is reading between the lines
- The multipolar framework may extend to other rare-earth compounds that host degenerate CEF levels even without boron.
- Transport and thermodynamic measurements in the ordered phases could reveal signatures of the hidden multipolar order beyond neutron scattering.
- Disorder from La dilution might be used to tune the stability of octupolar versus quadrupolar order in a controlled way.
Load-bearing premise
The cubic Gamma8 quartet state is the correct starting point that enables antiferro-quadrupolar and octupolar ordering in CeB6 and its alloys.
What would settle it
Inelastic neutron scattering spectra on CeB6 that show no dispersive multipolar wave modes consistent with Gamma8-derived quadrupolar or octupolar order.
Figures
read the original abstract
We review the cubic rare-earth boride series which displays diverse electronic states like localized 4f electron multiplets split by the crystal electric field (CEF), itinerant heavy-fermion quasiparticle bands of the Kondo lattice as well as gapped Kondo insulator or mixed-valent semiconductor states. Fairly exotic states may appear due to the 'hidden' order of multipoles carried by degenerate CEF multiplets, in addition to magnetic order present in many RB6 (R = rare earth) compounds. Most prominent are CeB6 and its La-diluted alloys which exhibit antiferro-quadrupolar and octupolar ordering enabled by the cubic G8 quartet state. The associated collective excitations are multipolar waves with a dispersion characteristic for the underlying order and accessible by inelastic neutron scattering. This localized multipolar-moment picture of R-borides is complemented by the itinerant Kondo-lattice approach. Collective spin exciton modes inside the hybridization gap around symmetry points of the Brillouin zone may appear. This has been observed in heavy-fermion metal CeB6 and in particular in the Kondo insulators YbB12 and SmB6. The latter is also the prime candidate for a strongly correlated topological insulator.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The manuscript reviews the cubic rare-earth boride series RB6, covering CEF-split 4f multiplets, Kondo-lattice heavy-fermion bands, hybridization gaps, and multipolar 'hidden' order. It focuses on CeB6 and La-diluted alloys, where the Gamma8 quartet enables antiferro-quadrupolar and octupolar ordering, with associated multipolar waves accessible by inelastic neutron scattering. The localized multipolar picture is complemented by an itinerant Kondo-lattice description that predicts collective spin-exciton modes inside the hybridization gap, observed in CeB6, YbB12, and SmB6 (the latter also discussed as a candidate correlated topological insulator).
Significance. If the synthesis holds, the review usefully connects established localized multipolar-moment and itinerant Kondo-lattice frameworks for RB6 compounds, compiling experimental anchors (INS, specific heat) and theoretical descriptions of collective excitations. It provides a coherent overview of how degenerate CEF states enable exotic order beyond conventional magnetism, with direct relevance to hidden-order physics in f-electron systems.
minor comments (2)
- The abstract and introduction use both 'G8' and 'Gamma8' for the quartet; consistent notation throughout would aid readability.
- Section on SmB6 topological-insulator candidacy would benefit from a brief statement of the current experimental status (e.g., surface-state ARPES results) to contextualize the claim.
Simulated Author's Rebuttal
We thank the referee for the positive assessment of the manuscript and the recommendation to accept.
Circularity Check
No significant circularity; review of established experimental facts
full rationale
This is a review paper summarizing known results on multipolar ordering in RB6 compounds (chiefly CeB6) enabled by the Gamma8 CEF quartet ground state. The Gamma8 level scheme and associated antiferro-quadrupolar/octupolar order are presented as standard, experimentally anchored facts from inelastic neutron scattering, specific heat, and related measurements in the prior literature, not as a novel derivation internal to the paper. No equations, fitted parameters, or self-citation chains are shown that reduce any claimed prediction or uniqueness result to the paper's own inputs by construction. The localized multipolar-moment picture and itinerant Kondo-lattice approach are described as complementary established frameworks without internal reduction to self-definition.
Axiom & Free-Parameter Ledger
axioms (2)
- domain assumption Crystal electric field splits degenerate 4f multiplets into states such as the G8 quartet
- domain assumption Hybridization between localized 4f and conduction electrons produces a gap containing collective spin-exciton modes
Reference graph
Works this paper leans on
-
[1]
Description of multipole in f -electron systems
Kusunose, H.; “Description of multipole in f -electron systems”; J. Phys. Soc. Jpn. 77, 064710 (2008)
work page 2008
-
[2]
Multipolar interactions in f -electron systems: The paradigm of actinide dioxides
Santini, P ., Carretta, S., Amoretti, G., Caciuffo, R., Magnani, N., and Lander, G. H.; “Multipolar interactions in f -electron systems: The paradigm of actinide dioxides”; Rev. Mod. Phys. 81, 807 (2009)
work page 2009
-
[3]
Neutron scattering study of the antiferroquadrupolar ordering in CeB6 and Ce0.75La0.25B6
Erkelens, W. A. C., Regnault, L. P ., Burlet, P ., and Rossat-Mignod, J.; “Neutron scattering study of the antiferroquadrupolar ordering in CeB6 and Ce0.75La0.25B6”; J. Magn. Magn. Mater. 63–64, 61 (1987)
work page 1987
-
[4]
Detection of neutrons scattering from phase IV of Ce0.7La0.3B6: a confirmation of the octupole order
Kuwahara, K., Iwasa, K., Kohgi, M., Aso, N., Sera, M., and Iga, F.; “Detection of neutrons scattering from phase IV of Ce0.7La0.3B6: a confirmation of the octupole order”; J. Phys. Soc. Jpn. 76, 093702 (2007)
work page 2007
-
[5]
Resonant x-ray scattering from the quadrupolar ordering phase of CeB 6
Nagao, T. and Igarashi, J.; “Resonant x-ray scattering from the quadrupolar ordering phase of CeB 6”; J. Phys. Soc. Jpn. 70, 2892 (2001)
work page 2001
-
[6]
Magnetic field induced 4f octupole in CeB 6 probed by resonant X-ray diffraction
Matsumura, T., Yonmura, T., Kunimori, K., Sera, M., and Iga, F.; “Magnetic field induced 4f octupole in CeB 6 probed by resonant X-ray diffraction”; Phys. Rev. Lett. 103, 017203 (2009)
work page 2009
-
[7]
Nagao, T. and Igarashi, J.; “Electric quadrupole contribution to resonant x-ray scattering: application to multipole ordering phases in Ce1−xLaxB6”; Phys. Rev. B 74, 104404 (2006)
work page 2006
-
[8]
Ultrasonic investigation of quadrupolar response in Kondo system Ce xLa1−xB6
Nakamura, S., Goto, T., and Kunii, S.; “Ultrasonic investigation of quadrupolar response in Kondo system Ce xLa1−xB6”; Physica B 219–220, 89 (1996)
work page 1996
-
[9]
Yanagisawa, T., Mombetsu, S., Hidaka, H., Amitsuka, H., Cong, P . T., Yasin, S., Zherlitsyn, S., Wosnitza, J., Huang, K., Kanchanavatee, N., Janoschek, M., Maple, M. B., and Aoki, D.; “Search for multipolar instability in URu2Si2 studied by ultrasonic measurements under pulsed magnetic field”;Phys. Rev. B 97, 155137 (2018)
work page 2018
-
[10]
NMR study on the spin structure of CeB6
Takigawa, M., Yasuoka, H., Tanaka, T., and Ishizawa, Y.; “NMR study on the spin structure of CeB6”; J. Phys. Soc. Jpn. 52, 728 (1983)
work page 1983
-
[11]
Magnetic-field effects on quadrupolar ordering in a Γ8-quartet system CeB6
Shiina, R., Shiba, H., and Thalmeier, P .; “Magnetic-field effects on quadrupolar ordering in a Γ8-quartet system CeB6”; J. Phys. Soc. Jpn. 66, 1741 (1997). July 26, 2019 0:25 PSP Book - 9in x 6in Borides˙Thalmeier 64 Book Title
work page 1997
-
[12]
Shiina, R., Sakai, O., and Shiba, H.; “Magnetic form factor of elastic neutron scattering expected for octupolar phases in Ce 0.7La0.3B6 and NpO2”; J. Phys. Soc. Jpn. 76, 094702 (2007)
work page 2007
-
[13]
Emergent rank-5 nematic order in URu 2Si2
Ikeda, H., Suzuki, M.-T., Arita, R., Takimoto, T., Shibauchi, T., and Matsuda, Y.; “Emergent rank-5 nematic order in URu 2Si2”; Nat. Phys. 8, 528 (2012)
work page 2012
-
[14]
Shibauchi, T., Ikeda, H., and Matsuda, Y.; “Broken symmetries in URu2Si2”; Philos. Mag. 94, 3747 (2014)
work page 2014
-
[15]
Itinerant multipolar order in URu 2Si2 and its signature in magnetic and lattice properties
Thalmeier, P ., Takimoto, T., and Ikeda, H.; “Itinerant multipolar order in URu 2Si2 and its signature in magnetic and lattice properties”; Phil. Mag. 32–33, 3863 (2014)
work page 2014
-
[16]
Collective spin resonance excitation in the gapped itinerant multipole hidden order phase of URu2Si2
Akbari, A. and Thalmeier, P .; “Collective spin resonance excitation in the gapped itinerant multipole hidden order phase of URu2Si2”; Phys. Rev. B 92, 094512 (2015)
work page 2015
-
[17]
Multipole orders and fluctuations in strongly correlated electron systems
Kuramoto, Y., Kusunose, H., and Kiss, A.; “Multipole orders and fluctuations in strongly correlated electron systems”; J. Phys. Soc. Jpn. 78, 072001 (2009)
work page 2009
-
[18]
Antiferro-hexadecapole scenario for metal-insulator transition in PrRu4P12
Takimoto, T.; “Antiferro-hexadecapole scenario for metal-insulator transition in PrRu4P12”; J. Phys. Soc. Jpn. 75, 034714 (2006)
work page 2006
-
[19]
Theory of metal-insulator transition and unconventional magnetic ordering in SmRu4P12
Shiina, R.; “Theory of metal-insulator transition and unconventional magnetic ordering in SmRu4P12”; J. Phys. Soc. Jpn. 82, 083713 (2013)
work page 2013
-
[20]
Exotic quadrupolar phenomena in non-Kramers doublet systems
Onimaru, T. and Kusunose, H.; “Exotic quadrupolar phenomena in non-Kramers doublet systems”; J. Phys. Soc. Jpn. 85, 082002 (2016)
work page 2016
-
[21]
Four-well tunneling states and elastic response of clathrates
Zerec, I., Keppens, V ., McGuire, M. A., Mandrus, D., Sales, B. C., and Thalmeier, P .; “Four-well tunneling states and elastic response of clathrates”; Phys. Rev. Lett. 92, 185502 (2004)
work page 2004
-
[22]
Motion of the guest ion as precursor to the first-order phase transition in the cage system GdB6
Iwasa, K., Igarashi, R., Saito, K., Laulhe, C., Orihara, T., Kunii, S., Kuwahara, K., Nakao, H., Murakami, Y., Iga, F., Sera, M., Tsutsui, S., Uchiyama, H., and Baron, A. Q. R.; “Motion of the guest ion as precursor to the first-order phase transition in the cage system GdB6”; Phys. Rev. B B 84, 214308 (2011)
work page 2011
-
[23]
Universality of anharmonic motion of heavy rare-earth atoms in hexaborides
Iwasa, K., Iga, F., Yonemoto, A., Otomo, Y., Tsutsui, S., and Baron, A. Q. R.; “Universality of anharmonic motion of heavy rare-earth atoms in hexaborides”; J. Phys. Soc. Jpn. 83, 094604 (2014)
work page 2014
-
[24]
Analysis of the crystal lattice instability for cage-cluster systems using superatom model
Serebrennikov, D. A., Clementyev, E. S., and Alekseev, P . A.; “Analysis of the crystal lattice instability for cage-cluster systems using superatom model”; J. Exp. Theor. Phys. 123, 452 (2016)
work page 2016
-
[25]
Elastic and magnetoelastic effects in CeB6
L ¨uthi, B., Blumenr ¨oder, S., Hillebrands, B., Zirngiebl, E., G ¨untherodt, G., and Winzer, K.; “Elastic and magnetoelastic effects in CeB6”; Z. Phys. B 31 (1984)
work page 1984
-
[26]
Comparitive study of rare earth hexaborides using high resolution angle-resolved photoemission
Ramankutty, S. V ., de Jong, N., Huang, Y. K., Zwartsenberg, B., Massee, F., Bay, T. V ., Golden, M. S., and Frantzekakis, E.; “Comparitive study of rare earth hexaborides using high resolution angle-resolved photoemission”; J. Electron Spectrosc. Relat. Phenom. July 26, 2019 0:25 PSP Book - 9in x 6in Borides˙Thalmeier Bibliography 65 208, 43 (2016)
work page 2019
-
[27]
Unconventional Fermi surface in an insulating state
Tan, B. S., Hsu, Y.-T., Zeng, B., Hatnean, M. C., Harrison, N., Zhu, Z., Hartstein, M., Kiourlappou, M., Srivastava, A., Johannes, M. D., Murphy, T. P ., Park, J.-H., Balicas, L., Lonzarich, G. G., Balakrishnan, G., and Sebastian, S. E.; “Unconventional Fermi surface in an insulating state”; Science 349, 287 (2015)
work page 2015
-
[28]
Fermi surface and cyclotron mass of CeB 6
Onuki, Y., Komatsubara, T., Reinders, P . H. P ., and Springford, M.; “Fermi surface and cyclotron mass of CeB 6”; J. Phys. Soc. Jpn. 58, 3698 (1989)
work page 1989
-
[29]
Electronic structure and the Fermi surfaces of antiferromagnetic NdB6
Kubo, Y., Asano, S., Harima, H., and Yanase, A.; “Electronic structure and the Fermi surfaces of antiferromagnetic NdB6”; J. Phys. Soc. Jpn. 62, 205 (1993)
work page 1993
-
[30]
Observation of the magnetic field dependence of the cyclotron mass in the Kondo lattice CeB6
Joss, W., van Ruitenbeek, J. M., Crabtree, G. W., Tholence, J. L., van Deursen, A. P . J., and Fisk, Z.; “Observation of the magnetic field dependence of the cyclotron mass in the Kondo lattice CeB6”; Phys. Rev. Lett. 59, 1609 (1987)
work page 1987
-
[31]
Point-charge calculations of energy levels of magnetic ions in crystalline electric fields
Hutchings, M. T.; “Point-charge calculations of energy levels of magnetic ions in crystalline electric fields”; in F. Seitz and D. Turnbull (Eds.), Solid State Physics, vol. 16, p. 227, (Academic Press, New York, 1964)
work page 1964
-
[32]
The raising of angular momentum degeneracy of f -electron terms by cubic crystal fields
Lea, K. R., Leask, M. J. M., and Wolf, W. P .; “The raising of angular momentum degeneracy of f -electron terms by cubic crystal fields”; J. Phys. Chem. Solids 23, 1381 (1962)
work page 1962
-
[33]
4 f crystal field ground state of the strongly correlated topological insulator SmB6
Sundermann, M., Yavas, H., Chen, K., Kim, D. J., Fisk, Z., Kasinathan, D., Haverkort, M. W., Thalmeier, Severing, A., and Tjeng, L. H.; “4 f crystal field ground state of the strongly correlated topological insulator SmB6”; Phys. Rev. Lett. 120, 016402 (2018)
work page 2018
-
[34]
Hamamoto, S., Fujioka, S., Kanai, Y., Yamagami, K., Nakatani, Y., Nakagawa, K., Fujiwara, H., Kiss, T., Higashiya, A., Yamasaki, A., Kadano, T., Imada, S., Tanaka, A., Tamasaku, K., Yabashi, M., Ishikawa, T., Matsumoto, K. T., Onimaru, T., Takabatake, T., and Sekiyama, A.; “Linear dichroism in angle-resolved core-level photoemission spectra reflecting 4 f ...
work page 2017
-
[35]
A RIXS investigation of the crystal-field splitting of Sm 3+ in SmB6
Amorese, A., Stockert, O., Kummer, K., Brookes, N. B., Kim, D.-J., Fisk, Z., Haverkort, M. W., Thalmeier, P ., Tjeng, L. H., and Severing, A.; “A RIXS investigation of the crystal-field splitting of Sm 3+ in SmB6”; arXiv:1901.10808 (2019)
-
[36]
Crystal fields in PrB6 and NdB6
Loewenhaupt, M. and Prager, M.; “Crystal fields in PrB6 and NdB6”; Z. Phys. B 62, 195 (1986)
work page 1986
-
[37]
Indirect multipole interactions in metallic rare-earth compounds
Teitelbaum, H. H. and Levy, P . M.; “Indirect multipole interactions in metallic rare-earth compounds”; Phys. Rev. B 14, 3058 (1976). July 26, 2019 0:25 PSP Book - 9in x 6in Borides˙Thalmeier 66 Book Title
work page 1976
-
[38]
Ab initio calculation of indirect multipolar interactions in DyZn
Schmitt, D. and Levy, P . M.; “Ab initio calculation of indirect multipolar interactions in DyZn”; Phys. Rev. B 29, 2850 (1984)
work page 1984
-
[39]
RKKY interaction between Ce ions in Ce6La1−xB6
Schlottmann, P .; “RKKY interaction between Ce ions in Ce6La1−xB6”; Phys. Rev. B 62, 10067 (2000)
work page 2000
-
[40]
Interpocket polarization model for magnetic structures in rare-earth boride compounds
Kuramoto, Y. and Kubo, K.; “Interpocket polarization model for magnetic structures in rare-earth boride compounds”; J. Phys. Soc. Jpn. 71, 2633 (2002)
work page 2002
-
[41]
Yamada, T. and Hanzawa, K.; “Derivation of RKKY interaction between multipole moments in CeB 6 by the effective Wannier model based on the bandstructure calculation”; J. Phys. Soc. Jpn. 88, 084703 (2019)
work page 2019
-
[42]
Nature of Ce-Ce interaction in CeB6 and its consequences
Shiba, H., Sakai, O., and Shiina, R.; “Nature of Ce-Ce interaction in CeB6 and its consequences”; J. Phys. Soc. Jpn. 68, 1988 (1999)
work page 1988
-
[43]
Nesting-driven multipolar order in CeB6 from photoemission tomography
Koitzsch, A., Herming, N., Knupfer, M., B¨uchner, B., Portnichenko, P . Y., Dukhnenko, A. V ., Shitsevalova, N. Y., Filipov, V . B., Lev, L. L., Strocov, V . N., Ollivier, J., and Inosov, D. S.; “Nesting-driven multipolar order in CeB6 from photoemission tomography”; Nat. Commun. 7 (2016)
work page 2016
-
[44]
The electron-phonon interaction in intermetallic compounds
Thalmeier, P . and L¨uthi, B.; “The electron-phonon interaction in intermetallic compounds”; chap. 96 in K. A. Gschneidner Jr. and LeRoy Eyring (Eds.), Handbook on the Physics and Chemistry of Rare Earths, vol. 14, pp. 225–341, (North-Holland, Amsterdam, 1991)
work page 1991
-
[45]
Crystalline-electric field level scheme of NdB6
Pofahl, G., Zirngiebl, E., Blumenr ¨oder, S., Brenten, H., and G ¨untherodt, G.; “Crystalline-electric field level scheme of NdB6”; Z. Phys. B 66, 339 (1987)
work page 1987
-
[46]
Anisotropic magnetic phase diagram of PrB 6 dominated by the Oxy antiferro-quadrupolar interaction
Kobayashi, S., Sera, M., Hiroi, M., Nishizaki, T., Kobayashi, N., and Kunii, S.; “Anisotropic magnetic phase diagram of PrB 6 dominated by the Oxy antiferro-quadrupolar interaction”; J. Phys. Soc. Jpn. 70, 1721 (2001)
work page 2001
-
[47]
Kuromaru, T., Kusunose, H., and Kuramoto, Y.; “Multipolar ordering in PrB6”; J. Phys. Soc. Jpn. 71, 130 (2002)
work page 2002
-
[48]
Quadrupole-strain interaction in Rare Earth hexaborides
Nakamura, S., Goto, T., Kunii, S., Iwashita, K., and Tamaki, A.; “Quadrupole-strain interaction in Rare Earth hexaborides”; J. Phys. Soc. Jpn. 63, 623 (1994)
work page 1994
-
[49]
Metamagnetic transition in NdB6 with a small magnetic anisotropy in low magnetic fields
Awaji, S., Kobayashi, N., Sakatsume, S., Kunii, S., and Sera, M.; “Metamagnetic transition in NdB6 with a small magnetic anisotropy in low magnetic fields”;J. Phys. Soc. Jpn. 68, 1518 (1999)
work page 1999
-
[50]
Yonemura, T., Tanida, H., Sera, M., and Iga, F.; “Competition between the quadrupole interaction and crystalline electric field effect in the antiferromagnetic ordered phase of NdB6”; J. Phys. Soc. Jpn. 78, 114705 (2009)
work page 2009
-
[51]
Bulk band gaps in divalent hexaborides
Denlinger, J. D., Clack, J. A., Allen, J. W., Gweon, G.-H., Poirier, D. M., Olson, C. G., Sarrao, J. L., Bianchi, A. D., and Fisk, Z.; “Bulk band gaps in divalent hexaborides”; Phys. Rev. Lett. 89, 157601 July 26, 2019 0:25 PSP Book - 9in x 6in Borides˙Thalmeier Bibliography 67 (2002)
work page 2019
-
[52]
Optical spectroscopy and electronic band structure of ferromagnetic EuB6
Kim, J., Kim, Y.-J., Kunes, J., Cho, B. K., and Choi, E. J.; “Optical spectroscopy and electronic band structure of ferromagnetic EuB6”; Phys. Rev. B 78, 165120 (2008)
work page 2008
-
[53]
Electronic properties of EuB6 in the ferromagnetic regime: Half-metal versus semiconductor
Kreissl, M. and Nolting, W.; “Electronic properties of EuB6 in the ferromagnetic regime: Half-metal versus semiconductor”; Phys. Rev. B 72, 245117 (2005)
work page 2005
-
[54]
Evidence for ferromagnetic clusters in the colossal magnetoresistance material EuB6
Pohlit, M., R ¨ossler, S., Ohno, Y., Ohno, H., v. Molnar, S., Fisk, Z., M ¨uller, J., and Wirth, S.; “Evidence for ferromagnetic clusters in the colossal magnetoresistance material EuB6”; Phys. Rev. B 120, 257201 (2018)
work page 2018
-
[55]
Wigger, G. A., Monnier, R., Ott, H. R., Young, D. P ., and Fisk, Z.; “Electronic transport in EuB 6”; Phys. Rev. B 69, 125118 (2004)
work page 2004
-
[56]
Macroscopic and microscopic investigation of the antiferromagnetic phase of TbB6
Amara, M., Galera, R.-M., Aviani, I., and Givord, F.; “Macroscopic and microscopic investigation of the antiferromagnetic phase of TbB6”; Phys. Rev. B 82, 224411 (2010)
work page 2010
-
[57]
Magnetic- ordering propagation vectors of terbium hexaboride revisited
Iwasa, K., Iga, F., Moyoshi, T., Nakao, A., and Ohhara, T.; “Magnetic- ordering propagation vectors of terbium hexaboride revisited”; J. Phys. Soc. Jpn. 87, 064705 (2018)
work page 2018
-
[58]
Quadrupolar effect of HoB 6 and DyB6
Goto, T., Nemoto, Y., Nakano, Y., Nakamura, S., Kajitani, T., and Kunii, S.; “Quadrupolar effect of HoB 6 and DyB6”; Physica B 281– 282, 586 (2000)
work page 2000
-
[59]
Not a simple ferro-quadrupole order in DyB6
Sera, M., Yonemura, T., Itamochi, K., Matsumura, T., Hiroi, M., and Takahashi, K.; “Not a simple ferro-quadrupole order in DyB6”; J. Phys. Soc. Jpn. 88, 054703 (2019)
work page 2019
-
[60]
Experimental investication of the cooperative Jahn-Teller effect in TmCd
L ¨uthi, B., Mullen, M. E., Andres, K., Bucher, E., and Maita, J. P .; “Experimental investication of the cooperative Jahn-Teller effect in TmCd”; Phys. Rev. B 8, 2639 (1973)
work page 1973
-
[61]
Magnetic-ion-lattice interaction: Rare- earth antimonides
Mullen, M. E., L ¨uthi, B., Wang, P . S., Bucher, E., Longinotti, L. D., Maita, J. P ., and Ott, H. R.; “Magnetic-ion-lattice interaction: Rare- earth antimonides”; Phys. Rev. B 10, 186 (1974)
work page 1974
-
[62]
Electronic structure of YbB 6: Is it a topological insulator or not?
Kang, C.-J., Denlinger, J. D., Allen, J. W., Min, C.-H., Reinert, F., Kang, B. Y., Cho, B. K., Kang, J. S., Shim, J. H., and Min, B. I.; “Electronic structure of YbB 6: Is it a topological insulator or not?”; Phys. Rev. Lett. 116, 116401 (2016)
work page 2016
-
[63]
Magnetic phase diagrams of the dense Kondo compounds CeB6 and Ce0.5La0.5B6
Nakamura, S., Goto, T., and Kunii, S.; “Magnetic phase diagrams of the dense Kondo compounds CeB6 and Ce0.5La0.5B6”; J. Phys. Soc. Jpn. 64, 3941 (1995)
work page 1995
-
[64]
Recent advances in the magnetism and superconductivity of heavy fermion systems
Onuki, Y., Settai, R., Sugiyama, K., Takeuchi, T., Kobayashi, T. C., Haga, Y., and Yamamoto, E.; “Recent advances in the magnetism and superconductivity of heavy fermion systems”; J. Phys. Soc. Jpn. 73, 769 (2004)
work page 2004
-
[65]
Thalmeier, P . and Zwicknagl, G.; “Unconventional superconduc- tivity and magnetism in lanthanide and actinide intermetallic July 26, 2019 0:25 PSP Book - 9in x 6in Borides˙Thalmeier 68 Book Title compounds”; chap. 219 in Handbook on the Physics and Chemistry of Rare Earths, vol. 34, pp. 135–287, (Elsevier, Amsterdam, 2005)
work page 2019
-
[66]
Superconductivity in heavy fermion compounds
Thalmeier, P ., Zwicknagl, G., Stockert, O., Sparn, G., and Steglich, F.; “Superconductivity in heavy fermion compounds”; in A. V . Narlikar (Ed.), Frontiers in Superconducting Materials, pp. 109–182, (Springer, Berlin Heidelberg, 2005)
work page 2005
-
[67]
Crystal-field excitations in CeB6 studied by Raman and neutron spectroscopy
Zirngiebl, E., Hillebrands, B., Blumenr ¨oder, S., G ¨untherodt, G., Loewenhaupt, M., Carpenter, J. M., Winzer, K., and Fisk, Z.; “Crystal-field excitations in CeB6 studied by Raman and neutron spectroscopy”; Phys. Rev. B 30, 4052 (1984)
work page 1984
-
[68]
New crystal-field level scheme of CeB6 deduced from Raman and neutron spectroscopy
Zirngiebl, E., Hillebrands, B., Blumenr¨oder, S., and G¨untherodt, G.; “New crystal-field level scheme of CeB6 deduced from Raman and neutron spectroscopy”; J. Appl. Phys. 57, 3769 (1985)
work page 1985
-
[69]
Raman spectroscopy of f -electron metals: An example of CeB6
Ye, M., Kung, H.-H., Rosa, P . F. S., Bauer, E. D., Fisk, Z., and Blumberg, G.; “Raman spectroscopy of f -electron metals: An example of CeB6”; Phys. Rev. Materials 3, 065003 (2019)
work page 2019
-
[70]
Orbital antiferromagnetism in CeB 6
Ohkawa, F. J.; “Orbital antiferromagnetism in CeB 6”; J. Phys. Soc. Jpn. 54, 3909 (1985)
work page 1985
-
[71]
Theory of multipolar excitations in CeB6
Thalmeier, P ., Shiina, R., Shiba, H., and Sakai, O.; “Theory of multipolar excitations in CeB6”; J. Phys. Soc. Jpn. 67, 2363 (1998)
work page 1998
-
[72]
Dynamics of multipoles and neutron scattering spectra in quadrupolar ordering phase of CeB 6
Shiina, R., Shiba, H., Thalmeier, P ., Takahashi, A., and Sakai, O.; “Dynamics of multipoles and neutron scattering spectra in quadrupolar ordering phase of CeB 6”; J. Phys. Soc. Jpn. 72, 1216 (2003)
work page 2003
-
[73]
Remark on high-field phase diagram of CeB6
Shiina, R.; “Remark on high-field phase diagram of CeB6”; J. Phys. Soc. Jpn. 71, 2257 (2002)
work page 2002
-
[74]
Extension of the temperature-magnetic field phase diagram of CeB6
Goodrich, R. G., Young, D. P ., Hall, D., Balicas, L., Fisk, Z., Harrison, N., Betts, J., Migliori, A., Woodward, F. M., and Lynn, J. W.; “Extension of the temperature-magnetic field phase diagram of CeB6”; Phys. Rev. B 69, 054415 (2004)
work page 2004
-
[75]
Interplay of field-induced multipoles in CeB6
Shiina, R., Sakai, O., Shiba, H., and Thalmeier, P .; “Interplay of field-induced multipoles in CeB6”; J. Phys. Soc. Jpn. 67, 941 (1998)
work page 1998
-
[76]
Hiroi, M., Kobayashi, S., Sera, M., Kobayashi, N., and Kunii, S.; “Reentrant behavior and strong anisotropy of the phase boundary between antiferro-quadrupolar ordered and paramagnetic phases in CexLa1−xB6 in high magnetic fields”; Phys. Rev. Lett. 81, 2510 (1998)
work page 1998
-
[77]
Magnetic anisotropy of the antiferroquadrupole phase in Ce0.50La0.50B6
Akatsu, M., Goto, T., Suzuki, O., Nemoto, Y., Nakamura, S., Kunii, S., and Kido, G.; “Magnetic anisotropy of the antiferroquadrupole phase in Ce0.50La0.50B6”; Phys. Rev. Lett. 93, 156409 (2004)
work page 2004
-
[78]
Quadrupolar phase transition and field-dependent multipolar fluctuation in CeB6
Shiina, R.; “Quadrupolar phase transition and field-dependent multipolar fluctuation in CeB6”; J. Phys. Soc. Jpn. 70, 2746 (2001)
work page 2001
-
[79]
Magnetic phase diagram of CeB 6
Effantin, J. M., Rossat-Mignod, J., Burlet, P ., Bartholin, H., Kunii, S., and Kasuya, T.; “Magnetic phase diagram of CeB 6”; J. Magn. Magn. July 26, 2019 0:25 PSP Book - 9in x 6in Borides˙Thalmeier Bibliography 69 Mater. 47–48, 145 (1985)
work page 2019
-
[80]
Electronic properties of crystalline materials observed in x-ray diffraction
Lovesey, S. W., Balcar, E., Knight, K. S., and Rodriguez, J. F.; “Electronic properties of crystalline materials observed in x-ray diffraction”; Phys. Rep. 411, 233 (2005)
work page 2005
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