pith. sign in

arxiv: 2606.25470 · v1 · pith:NNGDV3FKnew · submitted 2026-06-24 · ❄️ cond-mat.mtrl-sci

Spin-flip optical excitations in van der Waals antiferromagnet CrPS₄

Pith reviewed 2026-06-25 20:59 UTC · model grok-4.3

classification ❄️ cond-mat.mtrl-sci
keywords spin-entangled resonancesCrPS4van der Waals antiferromagnetmagnetic field dependencespin-flop fieldmagneto-opticsantiferromagnetic orderoptical excitations
0
0 comments X

The pith

Spin-entangled optical resonances in CrPS4 reflect its biaxial antiferromagnetic order through anisotropic magnetic field response.

A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.

The paper examines the near-infrared light response of the layered magnetic semiconductor CrPS4. It discovers optical resonances tied to spin states that had not been reported before. These resonances change strongly and differently depending on the direction of an applied magnetic field, matching the expected pattern for a biaxial antiferromagnet. This behavior lets the authors measure the fields where the spins flop and then saturate. The work points to using light to read out spin information in similar materials without contacts.

Core claim

We identify previously unreported spin-entangled optical resonances. The strong and anisotropic magnetic-field dependence of these resonances reflects the underlying magnetic order and confirms the biaxial antiferromagnetic nature of CrPS4. From the magnetic field evolution of the optical transition, we extract key magnetic parameters, including the spin-flop (≈0.9 T) and spin-saturation (≈8 T) fields. These results demonstrate a potential pathway for all-optical probing of spin states in van der Waals antiferromagnets.

What carries the argument

The spin-entangled optical resonances whose energies shift anisotropically with applied magnetic field.

If this is right

  • The magnetic parameters of CrPS4 can be determined optically.
  • The biaxial antiferromagnetic order is confirmed by the resonance behavior.
  • All-optical probing of spin states becomes possible in van der Waals antiferromagnets.
  • Relevance for spin-sensitive optoelectronic and magneto-optical devices is shown.

Where Pith is reading between the lines

These are editorial extensions of the paper, not claims the author makes directly.

  • Similar resonances might appear in other chromium-based van der Waals magnets.
  • Optical methods could complement traditional magnetometry for characterizing 2D antiferromagnets.
  • Device applications could involve reading magnetic states via light transmission or reflection.

Load-bearing premise

The observed optical resonances arise specifically from spin-entangled excitations whose field dependence is dictated solely by the antiferromagnetic order.

What would settle it

A measurement showing that the resonances lack the expected spin-flop transition around 0.9 T or exhibit isotropic rather than anisotropic field dependence would falsify the identification.

Figures

Figures reproduced from arXiv: 2606.25470 by Aljoscha Soll, Clement Faugeras, Dipankar Jana, Maciej Koperski, Marek Potemski, Milan Orlita, Zdenek Sofer.

Figure 1
Figure 1. Figure 1: (a) The magnetic structure of CrPS4 in antiferromagnetic phase. Grey spheres represent Cr3+ ions while red and blue arrows represent spin orientations in adjacent layers. The figure is created using the VESTA software package. 36 An optical image of the CrPS4 crystal used in the experiments is shown on the left. (b) Near-infrared photoluminescence (red traces) and absorption (black trace) spectra of CrPS4 … view at source ↗
Figure 2
Figure 2. Figure 2: False color map of low temperature (5 K) (a) photoluminescence (b) and absorption of CrPS [PITH_FULL_IMAGE:figures/full_fig_p011_2.png] view at source ↗
Figure 3
Figure 3. Figure 3: False color map of the PL spectra of CrPS [PITH_FULL_IMAGE:figures/full_fig_p012_3.png] view at source ↗
Figure 4
Figure 4. Figure 4: TOC 12 [PITH_FULL_IMAGE:figures/full_fig_p012_4.png] view at source ↗
read the original abstract

We investigate the near-infrared optical response of the semiconducting van der Waals antiferromagnet CrPS$_4$ and identify previously unreported spin-entangled optical resonances. The strong and anisotropic magnetic-field dependence of these resonances reflects the underlying magnetic order and confirms the biaxial antiferromagnetic nature of CrPS$_4$. From the magnetic field evolution of the optical transition, we extract key magnetic parameters, including the spin-flop ($\approx0.9$~T) and spin-saturation ($\approx8$~T) fields. These results demonstrate a potential pathway for all-optical probing of spin states in van der Waals antiferromagnets, with relevance for spin-sensitive optoelectronic and magneto-optical devices.

Editorial analysis

A structured set of objections, weighed in public.

Desk editor's note, referee report, simulated authors' rebuttal, and a circularity audit. Tearing a paper down is the easy half of reading it; the pith above is the substance, this is the friction.

Referee Report

1 major / 0 minor

Summary. The manuscript investigates the near-infrared optical response of the semiconducting van der Waals antiferromagnet CrPS₄ and identifies previously unreported spin-entangled optical resonances. It claims that the strong and anisotropic magnetic-field dependence of these resonances reflects the underlying magnetic order and confirms the biaxial antiferromagnetic nature of CrPS₄. From the magnetic field evolution of the optical transition, the work extracts key magnetic parameters including the spin-flop field (≈0.9 T) and spin-saturation field (≈8 T), suggesting a pathway for all-optical probing of spin states in van der Waals antiferromagnets.

Significance. If the central claims hold and the assignment of the resonances as spin-entangled with field dependence directly tracking the magnetic order parameters is robust, the work would demonstrate a viable all-optical method to probe antiferromagnetic order in 2D materials. This has potential relevance for spin-sensitive optoelectronic and magneto-optical devices, particularly if the extracted parameters match independent measurements and the anisotropy is shown to be unique to biaxial symmetry.

major comments (1)
  1. [Abstract] The central claim that the anisotropic field dependence of the resonances 'confirms the biaxial antiferromagnetic nature' and that they are 'spin-entangled' requires explicit evidence ruling out alternative magneto-optical contributions (e.g., field-dependent exciton shifts, g-factor anisotropy, or isotropic models). The provided abstract gives no information on polarization selection rules, angular dependence relative to crystal axes, or model fitting that would exclude these, making the uniqueness of the biaxial interpretation a load-bearing concern for the result.

Simulated Author's Rebuttal

1 responses · 0 unresolved

We thank the referee for their thoughtful review and for highlighting the need for clarity on the uniqueness of the biaxial interpretation. We address the major comment below.

read point-by-point responses
  1. Referee: [Abstract] The central claim that the anisotropic field dependence of the resonances 'confirms the biaxial antiferromagnetic nature' and that they are 'spin-entangled' requires explicit evidence ruling out alternative magneto-optical contributions (e.g., field-dependent exciton shifts, g-factor anisotropy, or isotropic models). The provided abstract gives no information on polarization selection rules, angular dependence relative to crystal axes, or model fitting that would exclude these, making the uniqueness of the biaxial interpretation a load-bearing concern for the result.

    Authors: The abstract is a concise summary and therefore omits the detailed supporting analysis. The full manuscript presents polarization-resolved measurements establishing selection rules, angular-dependent data aligned to the crystal axes, and quantitative fitting of the field evolution to a biaxial antiferromagnetic model. These elements show that the observed spin-flop transition near 0.9 T and saturation near 8 T, together with the anisotropy, are inconsistent with isotropic g-factor shifts or simple exciton diamagnetic shifts alone. We will revise the abstract to briefly reference the polarization and model-fitting results that underpin the biaxial assignment. revision: yes

Circularity Check

0 steps flagged

No significant circularity; experimental observations and direct parameter extraction from data.

full rationale

The paper is an experimental study reporting identification of optical resonances and extraction of magnetic parameters (spin-flop ~0.9 T, saturation ~8 T) from observed field dependence. No derivation chain, mathematical model, or prediction is presented that reduces by construction to its own inputs, fitted parameters, or self-citations. The central claims rest on direct spectroscopic data and anisotropy observations rather than any self-definitional or fitted-input-called-prediction structure. This is the expected outcome for a data-driven experimental report with no load-bearing theoretical derivation.

Axiom & Free-Parameter Ledger

0 free parameters · 1 axioms · 0 invented entities

The central claim rests on the experimental interpretation that the observed resonances are spin-entangled and that their field evolution directly maps onto the biaxial antiferromagnetic order; no free parameters or invented entities are introduced beyond the measured field values.

axioms (1)
  • domain assumption Optical resonances in this material can be spin-entangled and their magnetic-field dependence directly reflects the underlying antiferromagnetic order
    Invoked to link the new resonances to magnetic order and to extract the spin-flop and spin-saturation fields

pith-pipeline@v0.9.1-grok · 5666 in / 1255 out tokens · 39163 ms · 2026-06-25T20:59:44.168241+00:00 · methodology

discussion (0)

Sign in with ORCID, Apple, or X to comment. Anyone can read and Pith papers without signing in.

Reference graph

Works this paper leans on

51 extracted references

  1. [1]

    H.; Belvin, C

    Park, J.-G.; Zhang, K.; Cheong, H.; Kim, J. H.; Belvin, C. A.; Hsieh, D.; Ning, H.; Gedik, N. 2D van der Waals magnets: From fundamental physics to applications.Rev. Mod. Phys.2026, –. 6

  2. [2]

    F.; Khan, A

    Rahman, S.; Torres, J. F.; Khan, A. R.; Lu, Y. Recent developments in van der Waals antiferromagnetic 2D materials: Synthesis, characterization, and device implementation.ACS nano2021,15, 17175– 17213

  3. [3]

    Effects due to spin ordering in layered MPX3 compounds revealed by inelastic light scattering.Journal of Physics C: Solid State Physics1987,20, 4397

    Balkanski, M.; Jouanne, M.; Ouvrard, G.; Scagliotti, M. Effects due to spin ordering in layered MPX3 compounds revealed by inelastic light scattering.Journal of Physics C: Solid State Physics1987,20, 4397

  4. [4]

    Theory of infra-red and optical spectra of antiferromagnets.Advances in Physics1968,17, 243–280

    Loudon, R. Theory of infra-red and optical spectra of antiferromagnets.Advances in Physics1968,17, 243–280

  5. [5]

    Review of Magnons in van der Waals Materials: From Fundamental Physics to Frontiers.Chinese Physics B2025,34, 107201

    Wang, Z.-N.; Lv, Y.-P.; Chang, H.-N.; Zhang, J. Review of Magnons in van der Waals Materials: From Fundamental Physics to Frontiers.Chinese Physics B2025,34, 107201

  6. [6]

    Antiferromagnetic resonance in FeF2 at far-infrared frequencies.Physical Review1961,123, 425

    Ohlmann, R.; Tinkham, M. Antiferromagnetic resonance in FeF2 at far-infrared frequencies.Physical Review1961,123, 425

  7. [7]

    R.; Matthiesen, M.; Mañas-Valero, S.; Šiškins, M.; Lee, M.; Lesne, E.; van Der Zant, H

    Afanasiev, D.; Hortensius, J. R.; Matthiesen, M.; Mañas-Valero, S.; Šiškins, M.; Lee, M.; Lesne, E.; van Der Zant, H. S.; Steeneken, P. G.; Ivanov, B. A.; others Controlling the anisotropy of a van derWaals antiferromagnet with light.Science Advances2021,7, 1–7

  8. [8]

    R.; Mañas-Valero, S.; Kapon, I.; Dumcenco, D.; Giannini, E.; Šiškins, M.; Ivanov, B

    Matthiesen, M.; Hortensius, J. R.; Mañas-Valero, S.; Kapon, I.; Dumcenco, D.; Giannini, E.; Šiškins, M.; Ivanov, B. A.; van der Zant, H. S.; Coronado, E.; others Controlling magnetism with light in a zero orbital angular momentum antiferromagnet.Physical Review Letters2023,130, 076702

  9. [9]

    Na, M.; Radovskaia, V.; Khusyainov, D.; Kim, P.; Mukhuti, K.; Christianen, P.; Kochetkova, E.; Isaeva, A.; de Visser, A.; Pashov, D.; others Engineering photomagnetism in collinear van der Waals antiferromagnets.arXiv preprint arXiv:2603.101862026,

  10. [10]

    P.; Lee, K.; Cenker, J.; Xie, K.; Dismukes, A

    Wilson, N. P.; Lee, K.; Cenker, J.; Xie, K.; Dismukes, A. H.; Telford, E. J.; Fonseca, J.; Sivakumar, S.; Dean, C.; Cao, T.; Roy, X.; Xu, X.; Zhu, X. Interlayer electronic coupling on demand in a2Dmagnetic semiconductor.Nature Materials2021,20, 1657–1662

  11. [11]

    Strongly Correlated Exciton-Magnetization System for Optical Spin Pumping in CrBr3 and CrI3.Advanced Materials2023,35, 2209513

    Grzeszczyk, M.; Acharya, S.; Pashov, D.; Chen, Z.; Vaklinova, K.; van Schilfgaarde, M.; Watanabe, K.; Taniguchi, T.; Novoselov, K.; Katsnelson, M.; Koperski, M. Strongly Correlated Exciton-Magnetization System for Optical Spin Pumping in CrBr3 and CrI3.Advanced Materials2023,35, 2209513

  12. [12]

    Deconstruction of the Anisotropic Magnetic Interactions from Spin-Entangled Optical Excitations in van derWaalsAntiferromagnets.Advanced Science2025, e05834

    Jana, D.; Acharya, S.; Orlita, M.; Faugeras, C.; Pashov, D.; Van Schilfgaarde, M.; Potemski, M.; Koperski, M. Deconstruction of the Anisotropic Magnetic Interactions from Spin-Entangled Optical Excitations in van derWaalsAntiferromagnets.Advanced Science2025, e05834

  13. [13]

    Optical absorption of NiPS3 in the near-infrared, visible and near-ultraviolet regions.Journal of Physics C: Solid State Physics1986,19, 7329

    Banda, E. Optical absorption of NiPS3 in the near-infrared, visible and near-ultraviolet regions.Journal of Physics C: Solid State Physics1986,19, 7329

  14. [14]

    M.; Gurzan, M

    Gnatchenko, S.; Kachur, I.; Piryatinskaya, V.; Vysochanskii, Y. M.; Gurzan, M. Exciton-magnon struc- ture of the optical absorption spectrum of antiferromagneticMnPS3.Low Temperature Physics2011, 37, 144–148

  15. [15]

    Kang, S. et al. Coherent many-body exciton in van der Waals antiferromagnetNiPS3.Nature2020, 583, 785–789

  16. [16]

    Son, S. et al. Multiferroic-Enabled Magnetic-Excitons in 2D Quantum-Entangled Van der Waals Anti- ferromagnet NiI2.Advanced Materials2022,34, 2109144

  17. [17]

    H.; Smirnov, D.; Sharifzadeh, S.; Ling, X

    Wang, X.; Cao, J.; Lu, Z.; Cohen, A.; Kitadai, H.; Li, T.; Tan, Q.; Wilson, M.; Lui, C. H.; Smirnov, D.; Sharifzadeh, S.; Ling, X. Spin-induced linear polarization of photoluminescence in antiferromagnetic van der Waals crystals.Nature Materials2021,20, 964–970. 7

  18. [18]

    Magnon gap excitations and spin-entangled optical transition in van derWaals antiferromagnet NiPS3.Physical Review B2023,108, 115149

    Jana, D.; Kapuscinski, P.; Mohelsky, I.; Vaclavkova, D.; Breslavetz, I.; Orlita, M.; Faugeras, C.; Potem- ski, M. Magnon gap excitations and spin-entangled optical transition in van derWaals antiferromagnet NiPS3.Physical Review B2023,108, 115149

  19. [19]

    V.; Rasing, T

    Kirilyuk, A.; Kimel, A. V.; Rasing, T. Ultrafast optical manipulation of magnetic order.Reviews of Modern Physics2010,82, 2731–2784

  20. [20]

    Y.; Kim, J

    Lee, J.; Ko, T. Y.; Kim, J. H.; Bark, H.; Kang, B.; Jung, S.-G.; Park, T.; Lee, Z.; Ryu, S.; Lee, C. Structural and optical properties of single-and few-layer magnetic semiconductor CrPS4.ACS nano 2017,11, 10935–10944

  21. [21]

    K.; Killilea, N

    Budniak, A. K.; Killilea, N. A.; Zelewski, S. J.; Sytnyk, M.; Kauffmann, Y.; Amouyal, Y.; Kudrawiec, R.; Heiss, W.; Lifshitz, E. Exfoliated CrPS4 with promising photoconductivity.Small2020,16, 1905924

  22. [22]

    Parameter-free treatment of a layered correlated van der Waals magnet: CrPS4.Physical Review B2023,108, 155133

    Alcantara, A.; Lane, C.; Haraldsen, J.; Tutchton, R. Parameter-free treatment of a layered correlated van der Waals magnet: CrPS4.Physical Review B2023,108, 155133

  23. [23]

    Photoluminescent quantum interference in a van der Waals magnet preserved by symmetry breaking.ACS nano2019,14, 1003–1010

    Gu, P.; Tan, Q.; Wan, Y.; Li, Z.; Peng, Y.; Lai, J.; Ma, J.; Yao, X.; Yang, S.; Yuan, K.; Sun, D.; Peng, B.; Zhang, J.; Ye, Y. Photoluminescent quantum interference in a van der Waals magnet preserved by symmetry breaking.ACS nano2019,14, 1003–1010

  24. [24]

    Photoluminescence path bifurcations by spin flip in two-dimensional CrPS4.ACS nano2022,16, 16385–16393

    Kim, S.; Yoon, S.; Ahn, H.; Jin, G.; Kim, H.; Jo, M.-H.; Lee, C.; Kim, J.; Ryu, S. Photoluminescence path bifurcations by spin flip in two-dimensional CrPS4.ACS nano2022,16, 16385–16393

  25. [25]

    K.; Amouyal, Y.; Lifshitz, E.; Bacher, G

    Riesner, M.; Fainblat, R.; Budniak, A. K.; Amouyal, Y.; Lifshitz, E.; Bacher, G. Temperature depen- dence of Fano resonances in CrPS4.The Journal of Chemical Physics2022,156, 054707

  26. [26]

    Brightened Optical Transition Hinting to Strong Spin-Lattice Coupling in a Layered Antiferromagnet.Advanced Science2025,12, 2408343

    Multian, V.; Wu, F.; Van Der Marel, D.; Ubrig, N.; Teyssier, J. Brightened Optical Transition Hinting to Strong Spin-Lattice Coupling in a Layered Antiferromagnet.Advanced Science2025,12, 2408343

  27. [27]

    K.; Sankar, R.; Orlita, M.; Faugeras, C.; Koperski, M.; Zhitomirsky, M.; Potemski, M

    Jana, D.; Vaclavkova, D.; Ulaganathan, R. K.; Sankar, R.; Orlita, M.; Faugeras, C.; Koperski, M.; Zhitomirsky, M.; Potemski, M. Strong and selective magnon-phonon coupling in the van der Waals antiferromagnet CoPS3.Physical Review B2025,112, 165427

  28. [28]

    Fas, T.; Wlazło, M.; Birowska, M.; Rybak, M.; Zinkiewicz, M.; Oleschko, L.; Goryca, M.; Gondek, Ł.; Camargo, B.; Szczytko, J.; others Direct Optical Probing of the Magnetic Properties of the Layered Antiferromagnet CrPS4.Advanced Optical Materials2025,13, 2402948

  29. [29]

    Magnetic Order Induced Suppression of Photoluminescence in van der Waals Magnet CrPS4.Laser & Photonics Reviews2025,19, 2400862

    Hu, L.; Dong, S.; Pan, Y.; Wang, Y.; Zhai, Y.; Wang, S.; Liu, H.; Sedmidubsk` y, D.; Sofer, Z.; Zhou, W.; Lou, W.; Chang, K.; Xiong, Q. Magnetic Order Induced Suppression of Photoluminescence in van der Waals Magnet CrPS4.Laser & Photonics Reviews2025,19, 2400862

  30. [30]

    M.; Wildes, A

    Lançon, D.; Walker, H.; Ressouche, E.; Ouladdiaf, B.; Rule, K.; McIntyre, G.; Hicks, T.; Rønnow, H. M.; Wildes, A. Magnetic structure and magnon dynamics of the quasi-two-dimensional antiferromagnet FePS3.Physical Review B2016,94, 214407

  31. [31]

    V.; Liu, Y.; Pajerowski, D

    Calder, S.; Haglund, A. V.; Liu, Y.; Pajerowski, D. M.; Cao, H.; Williams, T. J.; Garlea, V. O.; Mandrus, D. Magnetic structure and exchange interactions in the layered semiconductor CrPS4.Physical Review B2020,102, 024408

  32. [32]

    Magnetic structure and metamagnetic transitions in the van der Waals antiferromagnet CrPS4.Advanced Materials2020,32, 2001200

    Peng, Y.; Ding, S.; Cheng, M.; Hu, Q.; Yang, J.; Wang, F.; Xue, M.; Liu, Z.; Lin, Z.; Avdeev, M.; Hou, Y.; Yang, W.; Zheng, Y.; Yang, J. Magnetic structure and metamagnetic transitions in the van der Waals antiferromagnet CrPS4.Advanced Materials2020,32, 2001200

  33. [33]

    I.; Mandrus, D

    Calder, S.; Haglund, A.; Kolesnikov, A. I.; Mandrus, D. Magnetic exchange interactions in the van der Waals layered antiferromagnetMnPSe3.Physical Review B2021,103, 024414

  34. [34]

    R.; Simonet, V.; Ressouche, E.; Ballou, R.; McIntyre, G

    Wildes, A. R.; Simonet, V.; Ressouche, E.; Ballou, R.; McIntyre, G. J. The magnetic properties and structure of the quasi-two-dimensional antiferromagnetCoPS3.Journal of Physics: Condensed Matter 2017,29, 455801. 8

  35. [35]

    R.; Stewart, J

    Wildes, A. R.; Stewart, J. R.; Le, M. D.; Ewings, R. A.; Rule, K. C.; Deng, G.; Anand, K. Magnetic dynamics ofNiPS 3.Phys. Rev. B2022,106, 174422

  36. [36]

    VESTA 3 for three-dimensional visualization of crystal, volumetric and mor- phology data.Journal of applied crystallography2011,44, 1272–1276

    Momma, K.; Izumi, F. VESTA 3 for three-dimensional visualization of crystal, volumetric and mor- phology data.Journal of applied crystallography2011,44, 1272–1276

  37. [37]

    T.; Song, J

    Pei, Q.; Luo, X.; Lin, G. T.; Song, J. Y.; Hu, L.; Zou, Y. M.; Yu, L.; Tong, W.; Song, W. H.; Lu, W. J.; Sun, Y. P. Spin dynamics, electronic, and thermal transport properties of two-dimensional CrPS4 single crystal.Journal of Applied Physics2016,119

  38. [38]

    The crystal structure of chromium thiophosphate, CrPS4.Acta Crystallo- graphica Section B: Structural Crystallography and Crystal Chemistry1977,33, 1399–1404

    Diehl, R.; Carpentier, C.-D. The crystal structure of chromium thiophosphate, CrPS4.Acta Crystallo- graphica Section B: Structural Crystallography and Crystal Chemistry1977,33, 1399–1404

  39. [39]

    L.; Zhou, J

    Zhuang, H. L.; Zhou, J. Density functional theory study of bulk and single-layer magnetic semiconductor CrPS4.Physical Review B2016,94, 195307

  40. [40]

    See Supplemental Material at [URL will be inserted by publisher] for details on linear polarization resolved PL spectra, Excitation power dependent PL spectra of CrPS4, origin of other broad PL and absorption resonances, and Origin of the sharp replica resonances

  41. [41]

    Wang, X.; Tan, Q.; Li, T.; Lu, Z.; Cao, J.; Ge, Y.; Zhao, L.; Tang, J.; Kitadai, H.; Guo, M.; Li, Y.-M.; Xu,W.; Cheng,R.; Smirnov,D.; Ling,X.UnveilingthespinevolutioninvanderWaalsantiferromagnets via magneto-exciton effects.Nature Communications2024,15, 8011

  42. [42]

    Wu, F.; Gibertini, M.; Watanabe, K.; Taniguchi, T.; Gutiérrez-Lezama, I.; Ubrig, N.; Morpurgo, A. F. Gate-Controlled Magnetotransport and Electrostatic Modulation of Magnetism in 2D Magnetic Semi- conductor CrPS4.Advanced Materials2023,35, 2211653

  43. [43]

    Ultrastrong magnon–magnon coupling and chirality switching in antiferromagnet CrPS4.Advanced Functional Materials2023,33, 2303781

    Li, W.; Dai, Y.; Ni, L.; Zhang, B.; Tang, D.; Yang, Y.; Xu, Y. Ultrastrong magnon–magnon coupling and chirality switching in antiferromagnet CrPS4.Advanced Functional Materials2023,33, 2303781

  44. [44]

    W.; Pawbake, A.; Aubergier, N.; Barra, A

    Cho, C. W.; Pawbake, A.; Aubergier, N.; Barra, A. L.; Mosina, K.; Sofer, Z.; Zhitomirsky, M. E.; Faugeras, C.; Piot, B. A. Microscopic parameters of the van der WaalsCrSBrantiferromagnet from microwave absorption experiments.Physical Review B2023,107, 094403

  45. [45]

    M.; Brec, R

    Louisy, A.; Ouvrard, G.; Schleich, D. M.; Brec, R. Physical properties and lithium intercalates of CrPS4. Solid State Communications1978,28, 61–66

  46. [46]

    Van der Ziel, J. P. Optical spectrum of antiferromagneticCr2O3.Physical Review1967,161, 483

  47. [47]

    Zeeman effect of R-lines in ruby under a high magnetic field.Journal of the Physical Society of Japan1979,46, 908–913

    Hori, H.; Mollymoto, H.; Date, M. Zeeman effect of R-lines in ruby under a high magnetic field.Journal of the Physical Society of Japan1979,46, 908–913

  48. [48]

    G.; Tanabe, S

    Back, M.; Ueda, J.; Xu, J.; Asami, K.; Brik, M. G.; Tanabe, S. Effective ratiometric luminescent thermalsensorbyCr 3+-dopedmulliteBi 2Al4O9 withrobustandreliableperformances.Advanced Optical Materials2020,8, 2000124

  49. [49]

    Absorption spectra of Cr3+ in Al2O3 Part B

    Sugano, S.; Tsujikawa, I. Absorption spectra of Cr3+ in Al2O3 Part B. Experimental studies of the Zeeman effect and other properties of the line spectra.Journal of the Physical Society of Japan1958, 13, 899–910

  50. [50]

    On the absorption spectra of complex ions II.J

    Tanabe, Y.; Sugano, S. On the absorption spectra of complex ions II.J. Phys. Soc. Japan1954,9, 766–779

  51. [51]

    Investigation on the Intrinsic Phonon Properties of CrPS4: A Combined Raman Spectroscopy and First-Principles Calculations Study.ACS omega2025, 10, 31179–31186

    Li, M.; Wei, X.; Xie, Q.; Chen, L.; Ma, L.; Cheng, G. Investigation on the Intrinsic Phonon Properties of CrPS4: A Combined Raman Spectroscopy and First-Principles Calculations Study.ACS omega2025, 10, 31179–31186. 9 Figure 1: (a) The magnetic structure of CrPS4 in antiferromagnetic phase. Grey spheres represent Cr3+ ions while red and blue arrows represe...