Orbital Altermagnetism
Pith reviewed 2026-05-22 12:14 UTC · model grok-4.3
The pith
Orbital altermagnetism is a symmetry-protected order of pure orbital magnetic moments that produces d-wave-like orbital-momentum locking.
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
Core claim
Orbital altermagnetism is characterized by ordered anti-parallel orbital magnetic moments in real space but momentum-dependent orbital band splittings, analogous to spin altermagnetism. Using a minimal tight-binding model with complex hoppings in a square-kagome lattice, such order inherently arises from staggered loop currents, producing a d-wave-like orbital-momentum locking. First-principles calculations show that orbital altermagnetism emerges independent of spin ordering in in-plane ferromagnets of CuBr2 and VS2, so that it can be unambiguously identified experimentally. It may also coexist with spin altermagnetism, such as in monolayer MoO and CrO.
What carries the argument
Symmetry-protected magnetic order of pure orbital degrees of freedom with anti-parallel orbital moments and momentum-dependent band splittings arising from staggered loop currents.
If this is right
- Orbital altermagnetism can be unambiguously identified experimentally in CuBr2 and VS2 because it appears independent of spin ordering.
- It may coexist with spin altermagnetism in materials such as monolayer MoO and CrO.
- It offers an alternative platform for symmetry-driven magnetotransport.
- It supports orbital-based spintronics through effects like large nonlinear current-induced orbital magnetization.
Where Pith is reading between the lines
- Angle-resolved photoemission could map the momentum-dependent orbital splittings directly in these materials.
- Devices might exploit orbital currents for information processing without requiring spin manipulation.
- The concept could extend to other lattice geometries or higher-dimensional structures for broader material searches.
Load-bearing premise
First-principles calculations can isolate pure orbital magnetic moments and band splittings without significant contamination from spin-orbit coupling or other relativistic effects.
What would settle it
An experiment measuring orbital band splittings or magnetic moments in CuBr2 or VS2 that shows the orbital order vanishes when spin ordering is independently suppressed.
Figures
read the original abstract
We introduce the concept of \emph{orbital altermagnetism}, a symmetry-protected magnetic order of pure orbital degrees of freedom. It is characterized with ordered anti-parallel orbital magnetic moments in real space but momentum-dependent orbital band splittings, analogous to spin altermagnetism. Using a minimal tight-binding model with complex hoppings in a square-kagome lattice, we show that such order inherently arises from staggered loop currents, producing a $d$-wave-like orbital-momentum locking. First-principles calculations show that orbital altermagnetism emerges independent of spin ordering in in-plane ferromagnets of CuBr$_2$ and VS$_2$, so that it can be unambiguously identified experimentally. On the other hand, it may also coexist with spin altermagnetism, such as in monolayer MoO and CrO. The orbital altermagnetism offers an alternative platform for symmetry-driven magnetotransport and orbital-based spintronics, as exemplified by large nonlinear current-induced orbital magnetization.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper introduces orbital altermagnetism as a symmetry-protected order of pure orbital magnetic moments, featuring anti-parallel moments in real space and d-wave-like orbital band splittings in momentum space. It constructs a minimal tight-binding model on the square-kagome lattice with complex hoppings arising from staggered loop currents to demonstrate the orbital-momentum locking, and presents first-principles calculations showing this order in in-plane ferromagnets CuBr2 and VS2 independent of spin ordering, as well as coexistence with spin altermagnetism in monolayer MoO and CrO. The work highlights potential for symmetry-driven magnetotransport and orbital spintronics through nonlinear current-induced orbital magnetization.
Significance. If the results hold, the introduction of orbital altermagnetism provides a distinct platform for orbital-based electronics and transport phenomena that can be decoupled from spin ordering. The tight-binding model supplies a transparent microscopic mechanism grounded in loop currents, and the material-specific DFT examples (CuBr2, VS2, MoO, CrO) offer concrete candidates for experimental verification and applications.
major comments (1)
- [First-principles calculations for CuBr2 and VS2] The central claim that orbital altermagnetism appears independent of spin ordering in CuBr2 and VS2 (and can therefore be unambiguously identified experimentally) is load-bearing for the strongest result. The first-principles section does not explicitly demonstrate that the reported orbital moments and band splittings survive in non-spin-polarized calculations or in runs with spin polarization constrained to zero; standard DFT+SOC workflows couple the channels, so the separation must be shown to secure the independence assertion.
minor comments (2)
- [Abstract] The abstract states that DFT is used but omits convergence parameters, k-point sampling, or the precise protocol for extracting orbital moments versus spin contributions; adding these details would improve reproducibility.
- [Tight-binding model] In the tight-binding model section, the explicit form of the complex hopping terms and the relation to staggered loop currents could be stated more formally (e.g., via an equation for the phase factors) to make the d-wave locking derivation fully transparent.
Simulated Author's Rebuttal
We thank the referee for the careful and constructive review of our manuscript on orbital altermagnetism. We appreciate the recognition of the potential significance of the concept and the value of the tight-binding model and material examples. We address the major comment below and will revise the manuscript to strengthen the presentation of the first-principles results.
read point-by-point responses
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Referee: [First-principles calculations for CuBr2 and VS2] The central claim that orbital altermagnetism appears independent of spin ordering in CuBr2 and VS2 (and can therefore be unambiguously identified experimentally) is load-bearing for the strongest result. The first-principles section does not explicitly demonstrate that the reported orbital moments and band splittings survive in non-spin-polarized calculations or in runs with spin polarization constrained to zero; standard DFT+SOC workflows couple the channels, so the separation must be shown to secure the independence assertion.
Authors: We agree that an explicit demonstration of orbital altermagnetism in the absence of spin polarization is necessary to fully substantiate the independence claim. In the revised manuscript we will add non-spin-polarized DFT+SOC calculations for CuBr₂ and VS₂, together with additional runs in which spin moments are constrained to zero. These calculations will show that the orbital magnetic moments and the associated d-wave-like band splittings remain essentially unchanged, confirming that the orbital order is not induced by the spin channel. The first-principles section and associated figures will be updated to include these results and to clarify the computational protocol. revision: yes
Circularity Check
No significant circularity; derivation relies on explicit model construction and first-principles results
full rationale
The paper introduces orbital altermagnetism as a new concept and demonstrates its emergence via a minimal tight-binding model on a square-kagome lattice (with complex hoppings producing staggered loop currents and d-wave orbital-momentum locking) plus separate first-principles calculations on CuBr2 and VS2. These steps do not reduce the reported orbital moments or band splittings to parameters defined by the target phenomenon itself, nor do they rename known results, smuggle ansatze via self-citation, or treat fitted inputs as predictions. The independence claim rests on explicit computational protocols rather than self-referential definitions, making the chain self-contained against external benchmarks.
Axiom & Free-Parameter Ledger
axioms (2)
- domain assumption Complex hoppings in the square-kagome lattice produce staggered loop currents that generate orbital magnetic moments.
- domain assumption First-principles calculations can separate orbital contributions from spin ordering in the chosen in-plane ferromagnets.
invented entities (1)
-
orbital altermagnetism
no independent evidence
Forward citations
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P-wave orbital magnetism protected by combined translation and time-reversal symmetry is proposed to originate from loop-current-induced orbital textures in a 2D Dirac lattice model, measurable via orbital Hall conductivity.
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Reference graph
Works this paper leans on
-
[1]
L. ˇSmejkal, J. Sinova, and T. Jungwirth, Beyond con- ventional ferromagnetism and antiferromagnetism: A phase with nonrelativistic spin and crystal rotation sym- metry, Phys. Rev. X12, 031042 (2022)
work page 2022
-
[2]
L. ˇSmejkal, J. Sinova, and T. Jungwirth, Emerging re- search landscape of altermagnetism, Phys. Rev. X12, 040501 (2022)
work page 2022
-
[3]
L. ˇSmejkal, R. Gonz´ alez-Hern´ andez, T. Jungwirth, and J. Sinova, Crystal time-reversal symmetry breaking and spontaneous hall effect in collinear antiferromagnets, Sci. Adv.6, eaaz8809 (2020)
work page 2020
-
[4]
H.-Y. Ma, M. Hu, N. Li, J. Liu, W. Yao, J.-F. Jia, and J. Liu, Multifunctional antiferromagnetic materials with giant piezomagnetism and noncollinear spin cur- rent, Nat. Commun.12, 2846 (2021)
work page 2021
-
[5]
C. Song, H. Bai, Z. Zhou, L. Han, H. Reichlova, J. H. Dil, J. Liu, X. Chen, and F. Pan, Altermagnets as a new class of functional materials, Nat. Rev. Mater.10, 473 (2025)
work page 2025
-
[6]
L. Bai, W. Feng, S. Liu, L. ˇSmejkal, Y. Mokrousov, and Y. Yao, Altermagnetism: Exploring new frontiers in magnetism and spintronics, Adv. Funct. Mater.34, 2409327 (2024)
work page 2024
-
[7]
L. ˇSmejkal, A. B. Hellenes, R. Gonz´ alez-Hern´ andez, J. Sinova, and T. Jungwirth, Giant and tunneling magnetoresistance in unconventional collinear antiferro- magnets with nonrelativistic spin-momentum coupling, Phys. Rev. X12, 011028 (2022)
work page 2022
-
[9]
Gonz´ alez-Hern´ andez, L.ˇSmejkal, K
R. Gonz´ alez-Hern´ andez, L.ˇSmejkal, K. V´ yborn´ y, Y. Ya- hagi, J. Sinova, T. Jungwirth, and J. ˇZelezn´ y, Ef- ficient electrical spin splitter based on nonrelativis- tic collinear antiferromagnetism, Phys. Rev. Lett.126, 127701 (2021)
work page 2021
-
[10]
A. Bose, N. J. Schreiber, R. Jain, D.-F. Shao, H. P. Nair, J. Sun, X. S. Zhang, D. A. Muller, E. Y. Tsymbal, D. G. Schlom, and D. C. Ralph, Tilted spin current generated by the collinear antiferromagnet ruthenium dioxide, Nat. Electron.5, 267 (2022)
work page 2022
-
[11]
H. Bai, Y. C. Zhang, Y. J. Zhou, P. Chen, C. H. Wan, L. Han, W. X. Zhu, S. X. Liang, Y. C. Su, X. F. Han, F. Pan, and C. Song, Efficient spin-to-charge conversion via altermagnetic spin splitting effect in antiferromagnet ruo2, Phys. Rev. Lett.130, 216701 (2023)
work page 2023
-
[12]
Y. Fang, J. Cano, and S. A. A. Ghorashi, Quantum geometry induced nonlinear transport in altermagnets, Phys. Rev. Lett.133, 106701 (2024)
work page 2024
-
[13]
M. Ezawa, Third-order and fifth-order nonlinear spin- current generation ing-wave andi-wave altermagnets and perfectly nonreciprocal spin current inf-wave mag- nets, Phys. Rev. B111, 125420 (2025)
work page 2025
-
[14]
M. Naka, S. Hayami, H. Kusunose, Y. Yanagi, Y. Mo- tome, and H. Seo, Spin current generation in organic antiferromagnets, Nat. Commun.10, 4305 (2019)
work page 2019
- [15]
-
[16]
S. Bhowal and N. A. Spaldin, Ferroically ordered mag- netic octupoles ind-wave altermagnets, Phys. Rev. X 14, 011019 (2024)
work page 2024
-
[17]
J. Krempask´ y, L. ˇSmejkal, S. W. D’Souza, M. Ha- jlaoui, G. Springholz, K. Uhl´ ıˇ rov´ a, F. Alarab, P. C. Constantinou, V. Strocov, D. Usanov, W. R. Pudelko, R. Gonz´ alez-Hern´ andez, A. Birk Hellenes, Z. Jansa, H. Reichlov´ a, Z. ˇSob´ aˇ n, R. D. Gonzalez Betancourt, P. Wadley, J. Sinova, D. Kriegner, J. Min´ ar, J. H. Dil, and T. Jungwirth, Alterm...
work page 2024
-
[18]
R. Takagi, R. Hirakida, Y. Settai, R. Oiwa, H. Tak- agi, A. Kitaori, K. Yamauchi, H. Inoue, J.-i. Yamaura, D. Nishio-Hamane, S. Itoh, S. Aji, H. Saito, T. Naka- jima, T. Nomoto, R. Arita, and S. Seki, Spontaneous hall effect induced by collinear antiferromagnetic order at room temperature, Nat. Mater.24, 63 (2025)
work page 2025
-
[19]
H. Reichlova, R. Lopes Seeger, R. Gonz´ alez-Hern´ andez, I. Kounta, R. Schlitz, D. Kriegner, P. Ritzinger, M. Lammel, M. Leivisk¨ a, A. Birk Hellenes, K. Olejn´ ık, V. Petˇ riˇ cek, P. Doleˇ zal, L. Horak, E. Schmoranze- rova, A. Badura, S. Bertaina, A. Thomas, V. Baltz, L. Michez, J. Sinova, S. T. B. Goennenwein, T. Jung- wirth, and L. ˇSmejkal, Observa...
work page 2024
-
[20]
S. Lee, S. Lee, S. Jung, J. Jung, D. Kim, Y. Lee, B. Seok, J. Kim, B. G. Park, L. ˇSmejkal, C.-J. Kang, and C. Kim, Broken kramers degeneracy in altermag- netic MnTe, Phys. Rev. Lett.132, 036702 (2024)
work page 2024
-
[21]
M. Gu, Y. Liu, H. Zhu, K. Yananose, X. Chen, Y. Hu, A. Stroppa, and Q. Liu, Ferroelectric switchable alter- magnetism, Phys. Rev. Lett.134, 106802 (2025)
work page 2025
-
[22]
M. Hu, X. Cheng, Z. Huang, and J. Liu, Catalog of c-paired spin-momentum locking in antiferromagnetic systems, Phys. Rev. X15, 021083 (2025)
work page 2025
-
[23]
L. ˇSmejkal, A. Marmodoro, K.-H. Ahn, R. Gonz´ alez- Hern´ andez, I. Turek, S. Mankovsky, H. Ebert, S. W. D’Souza, O. ˇSipr, J. Sinova, and T. Jungwirth, Chiral magnons in altermagnetic RuO 2, Phys. Rev. Lett.131, 256703 (2023)
work page 2023
-
[24]
I. I. Mazin, K. Koepernik, M. D. Johannes, R. Gonz´ alez- Hern´ andez, and L. ˇSmejkal, Prediction of unconven- tional magnetism in doped FeSb2, Proc. Natl. Acad. Sci. USA118, e2108924118 (2021)
work page 2021
-
[25]
C. L. Tschirhart, M. Serlin, H. Polshyn, A. Shragai, Z. Xia, J. Zhu, Y. Zhang, K. Watanabe, T. Taniguchi, M. E. Huber, and A. F. Young, Imaging orbital ferro- magnetism in a moir´ e chern insulator, Science372, 1323 (2021)
work page 2021
- [26]
- [27]
-
[28]
H. Polshyn, J. Zhu, M. A. Kumar, Y. Zhang, F. Yang, C. L. Tschirhart, M. Serlin, K. Watanabe, T. Taniguchi, A. H. MacDonald, and A. F. Young, Electrical switching of magnetic order in an orbital chern insulator, Nature 588, 66 (2020)
work page 2020
-
[29]
A. L. Sharpe, E. J. Fox, A. W. Barnard, J. Finney, K. Watanabe, T. Taniguchi, M. A. Kastner, and D. Goldhaber-Gordon, Evidence of orbital ferromag- netism in twisted bilayer graphene aligned to hexagonal boron nitride, Nano Lett.21, 4299 (2021)
work page 2021
-
[30]
G. Chen, A. L. Sharpe, E. J. Fox, S. Wang, B. Lyu, L. Jiang, H. Li, K. Watanabe, T. Taniguchi, M. F. Crommie, M. A. Kastner, Z. Shi, D. Goldhaber-Gordon, Y. Zhang, and F. Wang, Tunable orbital ferromagnetism at noninteger filling of a moir´ e superlattice, Nano Lett. 22, 238 (2022)
work page 2022
-
[31]
J. Xie, Z. Zhang, X. Chen, Y. H. Kwan, Z. Huo, J. Herzog-Arbeitman, L. Guo, K. Watanabe, T. Taniguchi, K. Liu, X. C. Xie, B. A. Bernevig, Z.-D. Song, and X. Lu, Unconventional orbital mag- netism in graphene-based fractional chern insulators (2025), arXiv:2506.01485 [cond-mat.mes-hall]
-
[32]
T. Han, Z. Lu, G. Scuri, J. Sung, J. Wang, T. Han, K. Watanabe, T. Taniguchi, L. Fu, H. Park, and L. Ju, Orbital multiferroicity in pentalayer rhombohe- dral graphene, Nature623, 41 (2023)
work page 2023
-
[33]
T. Han, Z. Lu, Y. Yao, J. Yang, J. Seo, C. Yoon, K. Watanabe, T. Taniguchi, L. Fu, F. Zhang, and L. Ju, Large quantum anomalous hall effect in spin-orbit proximitized rhombohedral graphene, Science384, 647 (2024)
work page 2024
-
[34]
J. Xie, Z. Huo, X. Lu, Z. Feng, Z. Zhang, W. Wang, Q. Yang, K. Watanabe, T. Taniguchi, K. Liu, Z. Song, X. C. Xie, J. Liu, and X. Lu, Tunable fractional chern insulators in rhombohedral graphene superlattices, Nat. Mater.24, 1042 (2025)
work page 2025
- [35]
- [36]
- [37]
-
[38]
L. M. Sandratskii and J. K¨ ubler, Role of orbital polar- ization in weak ferromagnetism, Phys. Rev. Lett.76, 4963 (1996)
work page 1996
-
[39]
R. Shindou and N. Nagaosa, Orbital ferromagnetism and anomalous hall effect in antiferromagnets on the distorted fcc lattice, Phys. Rev. Lett.87, 116801 (2001)
work page 2001
- [40]
-
[41]
D. Jo, D. Go, Y. Mokrousov, P. M. Oppeneer, S.-W. Cheong, and H.-W. Lee, Weak ferromagnetism in al- termagnets from alternatingg-tensor anisotropy, Phys. Rev. Lett.134, 196703 (2025)
work page 2025
-
[42]
A. Nersesyan and G. Vachnadze, Low-temperature ther- modynamics of the two-dimensional orbital antiferro- magnet, J. Low Temp. Phys.77, 293 (1989)
work page 1989
-
[43]
Varma, Mind the pseudogap, Nature468, 184 (2010)
C. Varma, Mind the pseudogap, Nature468, 184 (2010)
work page 2010
-
[44]
C. M. Varma, Non-fermi-liquid states and pairing insta- bility of a general model of copper oxide metals, Phys. Rev. B55, 14554 (1997)
work page 1997
-
[45]
C. M. Varma, Pseudogap phase and the quantum- critical point in copper-oxide metals, Phys. Rev. Lett. 7 83, 3538 (1999)
work page 1999
-
[46]
C. M. Varma, Theory of the pseudogap state of the cuprates, Phys. Rev. B73, 155113 (2006)
work page 2006
-
[47]
A. Shekhter and C. M. Varma, Considerations on the symmetry of loop order in cuprates, Phys. Rev. B80, 214501 (2009)
work page 2009
-
[48]
C. M. Varma, Pseudogap in cuprates in the loop-current ordered state, J. Phys. Condens. Matter26, 505701 (2014)
work page 2014
- [49]
-
[50]
R. B. Laughlin, Fermi-liquid computation of the phase diagram of high-T c cuprate superconductors with an orbital antiferromagnetic pseudogap, Phys. Rev. Lett. 112, 017004 (2014)
work page 2014
-
[51]
V. Leeb, A. Mook, L. ˇSmejkal, and J. Knolle, Sponta- neous formation of altermagnetism from orbital order- ing, Phys. Rev. Lett.132, 236701 (2024)
work page 2024
-
[52]
R. Siddharthan and A. Georges, Square kagome quan- tum antiferromagnet and the eight-vertex model, Phys. Rev. B65, 014417 (2001)
work page 2001
-
[53]
J. Richter, O. Derzhko, and J. Schulenburg, Magnetic- field induced spin-peierls instability in strongly frus- trated quantum spin lattices, Phys. Rev. Lett.93, 107206 (2004)
work page 2004
-
[54]
A. W. Glaetzle, M. Dalmonte, R. Nath, I. Rousochatza- kis, R. Moessner, and P. Zoller, Quantum spin-ice and dimer models with rydberg atoms, Phys. Rev. X4, 041037 (2014)
work page 2014
-
[55]
T. Thonhauser, D. Ceresoli, D. Vanderbilt, and R. Resta, Orbital magnetization in periodic insulators, Phys. Rev. Lett.95, 137205 (2005)
work page 2005
-
[56]
D. Ceresoli, T. Thonhauser, D. Vanderbilt, and R. Resta, Orbital magnetization in crystalline solids: Multi-band insulators, chern insulators, and metals, Phys. Rev. B74, 024408 (2006)
work page 2006
- [57]
-
[58]
J. Shi, G. Vignale, D. Xiao, and Q. Niu, Quantum the- ory of orbital magnetization and its generalization to interacting systems, Phys. Rev. Lett.99, 197202 (2007)
work page 2007
-
[59]
Resta, Electrical polarization and orbital magneti- zation: the modern theories, J
R. Resta, Electrical polarization and orbital magneti- zation: the modern theories, J. Phys.: Condens.Matter 22, 123201 (2010)
work page 2010
-
[60]
Thonhauser, Theory of orbital magnetization in solids, Int
T. Thonhauser, Theory of orbital magnetization in solids, Int. J. Mod. Phys. B25, 1429 (2011)
work page 2011
-
[61]
D. Xiao, M.-C. Chang, and Q. Niu, Berry phase ef- fects on electronic properties, Rev. Mod. Phys.82, 1959 (2010)
work page 1959
-
[62]
R. Bianco and R. Resta, Orbital magnetization as a lo- cal property, Phys. Rev. Lett.110, 087202 (2013)
work page 2013
-
[63]
A. Marrazzo and R. Resta, Locality of the anomalous hall conductivity, Phys. Rev. B95, 121114 (2017)
work page 2017
-
[64]
S.-S. Wang, Y. Yu, J.-H. Guan, Y.-M. Dai, H.-H. Wang, and Y.-Y. Zhang, Boundary effects on orbital magneti- zation for a bilayer system with different chern numbers, Phys. Rev. B106, 075136 (2022)
work page 2022
-
[65]
S. Bhowal and G. Vignale, Orbital Hall effect as an al- ternative to valley hall effect in gapped graphene, Phys. Rev. B103, 195309 (2021)
work page 2021
-
[66]
S. Zeng and Y.-J. Zhao, Description of two-dimensional altermagnetism: Categorization using spin group the- ory, Phys. Rev. B110, 054406 (2024)
work page 2024
-
[67]
S.-W. Cheong and F.-T. Huang, Altermagnetism classi- fication, npj Quantum Mater.10, 38 (2025)
work page 2025
-
[68]
P. A. McClarty and J. G. Rau, Landau theory of alter- magnetism, Phys. Rev. Lett.132, 176702 (2024)
work page 2024
-
[69]
See Supplemental Material at http://link.aps.org/supplemental/xxx, for more details about the expressions of orbital magnetization in reciprocal and real spaces, magnetic multipoles, the formula for nonlinear current-induced magnetization, detailed symmetry analysis of orbital altermagnetism, the first-principles calculation method, and more numerical res...
-
[70]
M. E. Simon and C. M. Varma, Detection and impli- cations of a time-reversal breaking state in underdoped cuprates, Phys. Rev. Lett.89, 247003 (2002)
work page 2002
-
[71]
S. Chakravarty, R. B. Laughlin, D. K. Morr, and C. Nayak, Hidden order in the cuprates, Phys. Rev. B 63, 094503 (2001)
work page 2001
-
[72]
H. A. Mook, P. Dai, and F. Do˘ gan, Observation of magnetic moments in the superconducting state of YBa2Cu3O6.6, Phys. Rev. B64, 012502 (2001)
work page 2001
-
[73]
S. Chakravarty, H.-Y. Kee, and C. Nayak, Neutron scat- tering signature of d-density wave order in the cuprates, Int. J. Mod. Phys. B15, 2901 (2001)
work page 2001
- [74]
-
[75]
V. I. Belyavsky, Y. V. Kopaev, and M. Y. Smirnov, Interplay of the superconducting state and orbital an- tiferromagnetic state of the high-temperature cuprate superconductors, Phys. Rev. B72, 132501 (2005)
work page 2005
-
[76]
D. F. Schroeter and S. Doniach, Orbital antiferromag- netism in coupled planar systems, Phys. Rev. B69, 094407 (2004)
work page 2004
-
[77]
F. J. Ohkawa, Orbital antiferromagnetism in ceb6, J. Phys. Soc. Jpn.54, 3909 (1985)
work page 1985
-
[78]
H.-H. Kung, S. Ran, N. Kanchanavatee, V. Krapivin, A. Lee, J. A. Mydosh, K. Haule, M. B. Maple, and G. Blumberg, Analogy between the “hidden order” and the orbital antiferromagnetism in URu2−xFexSi2, Phys. Rev. Lett.117, 227601 (2016)
work page 2016
-
[79]
M. Vila, V. Sunko, and J. E. Moore, Orbital-spin locking and its optical signatures in altermagnets, Phys. Rev. B 112, L020401 (2025)
work page 2025
-
[80]
L. Zhao, T.-L. Hung, C.-C. Li, Y.-Y. Chen, M.-K. Wu, R. K. Kremer, M. G. Banks, A. Simon, M.-H. Whangbo, C. Lee, J. S. Kim, I. Kim, and K. H. Kim, CuBr 2 – a new multiferroic material with high critical tempera- ture, Adv. Mater.24, 2469 (2012)
work page 2012
-
[81]
Q. Ji, C. Li, J. Wang, J. Niu, Y. Gong, Z. Zhang, Q. Fang, Y. Zhang, J. Shi, L. Liao, X. Wu, L. Gu, Z. Liu, and Y. Zhang, Metallic vanadium disulfide nanosheets as a platform material for multifunctional electrode ap- plications, Nano Lett.17, 4908 (2017)
work page 2017
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