Nanomagnetism and high frequencies

The research activities of the team aim at providing a better understanding of spin dependent transport and magnetization dynamics in ferromagnets at the nanoscale. From the theoretical point of view, state-of-the-art finite-element micromagnetic simulations are being carried out to investigate the static and dynamic properties of various nanoscale magnetic systems. From the experimental point of view, we investigate spin-polarized transport in two extreme situations: Tunneling through low-dimensional structures is probed by growing them into epitaxial tunnel junctions and measuring their low-temperature magnetoresistance. Long-range diffusive spin transport is probed by measuring the propagation of spin waves along ferromagnetic metal films and its modification by an electrical current (spin-wave Doppler shift).

Research Activities

Team Members

PhD student, Magnetic Objects on the NanoScale (DMONS)anakha.anil@ipcms.unistra.fr
Tél: +33(0)3 88 10 70 79Bureau: 1018a
Senior Researcher, Magnetic Objects on the NanoScale (DMONS)Matthieu.Bailleul@ipcms.unistra.fr
Tél: +33(0)3 88 10 70 08Bureau: 0009
Voir la page personnelle
PhD student, Magnetic Objects on the NanoScale (DMONS)louis.gallard@ipcms.unistra.fr
Tél: +33(0)3 88 10 72 31Bureau: 1053
Researcher, Magnetic Objects on the NanoScale (DMONS)Yves.Henry@ipcms.unistra.fr
Tél: +33(0)3 88 10 70 66Bureau: 1005
Senior Researcher, Magnetic Objects on the NanoScale (DMONS)Riccardo.Hertel@ipcms.unistra.fr
Tél: +33(0)3 88 10 70 83Bureau: 1006
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Senior Researcher, Magnetic Objects on the NanoScale (DMONS)Christian.Meny@ipcms.unistra.fr
Tél: +33(0)3 88 10 70 07Bureau: 0007
Researcher, Magnetic Objects on the NanoScale (DMONS)paul.noel@ipcms.unistra.fr
Tél: +33(0)3 88 10 70 72Bureau: 1011
Emeritus, Magnetic Objects on the NanoScale (DMONS)Veronique.Pierron-Bohnes@ipcms.unistra.fr
Tél: +33(0)3 88 10 70 73Bureau: 1013
PhD student, Magnetic Objects on the NanoScale (DMONS)quentin.rossi@ipcms.unistra.fr
Tél: +33(0)3 88 10 70 79Bureau: 1018a
Researcher, Magnetic Objects on the NanoScale (DMONS)Daniel.Stoeffler@ipcms.unistra.fr
Tél: +33(0)3 88 10 68 37Bureau: 1004
PhD student, Magnetic Objects on the NanoScale (DMONS)ashfaque.thonikkadavan@ipcms.unistra.fr
Tél: +33(0)3 88 10 70 84Bureau: 1017
PhD student, Inorganic Materials Chemistry (DCMI), Magnetic Objects on the NanoScale (DMONS)mariajose.vazquez@ipcms.unistra.fr
Tél: +33(0)3 88 10 70 79Bureau: 1018a

Recent publications :

1839302 GA3EX26X 1 surface-science-reports 50 creator desc year 4391 https://www.ipcms.unistra.fr/plugins/zotpress/
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A.N. Morozovska, E.A. Eliseev, S.V. Kalinin, R. Hertel, Flexosensitive polarization vortices in thin ferroelectric films, Physical Review B 104 (2021) 085420. https://doi.org/10.1103/PhysRevB.104.085420.
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S. Morin, V. Pierron-Bohnes, Patricia Bassereau, une biophysicienne passionnée !, Reflets de la Physique (2021) 43–45.
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C. Mény, P. Panissod, Nuclear magnetic resonance in ferromagnets: Ferromagnetic nuclear resonance; a very broadband approach, in: G.A. Webb (Ed.), Annual Reports on NMR Spectroscopy, Academic Press, 2021: pp. 47–96. https://doi.org/10.1016/bs.arnmr.2021.02.001.
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D. Markó, R. Cheenikundil, J. Bauer, K. Lenz, W.-C. Chuang, K.-W. Lin, J.-C. Wu, M. d’Aquino, R. Hertel, D.S. Schmool, Interpretation of Spin-Wave Modes in Co/Ag Nanodot Arrays Probed by Broadband Ferromagnetic Resonance, Physical Review Applied 20 (2023) 024059. https://doi.org/10.1103/PhysRevApplied.20.024059.
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V. Marichez, A. Sato, P.A. Dunne, J. Leira-Iglesias, G.J.M. Formon, M.K. Schicho, I. de Feijter, P. Hébraud, M. Bailleul, P. Besenius, M. Venkatesan, J.M.D. Coey, E.W. Meijer, T.M. Hermans, Magnetic Control over the Fractal Dimension of Supramolecular Rod Networks, Journal of the American Chemical Society 143 (2021) 11914–11918. https://doi.org/10.1021/jacs.1c05053.
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G. Magnifouet, M. Vallet, E. Meslin, M. Walls, C. Bouillet, J. Arabski, V. Pierron-Bohnes, Strains in Fe/Cr/Fe trilayers and (Fe/Cr)5/Fe multilayers epitaxied on MgO and MgO/SrTiO3, Thin Solid Films 780 (2023) 139949. https://doi.org/https://doi.org/10.1016/j.tsf.2023.139949.
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R. Kozubski, C. Issro, K. Zapala, M. Kozlowski, M. Rennhofer, E. Partyka, V. Pierron-Bohnes, W. Pfeiler, Atomic migration and ordering phenomena in bulk and thin films of FePd and FePt, International Journal of Materials Research 97 (2022) 273–284. https://doi.org/10.3139/ijmr-2006-0044.
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N. Konstantinov, A. Tauzin, U.N. Noumbe, D. Dragoe, B. Kundys, H. Majjad, A. Brosseau, M. Lenertz, A. Singh, S. Berciaud, M.-L. Boillot, B. Doudin, T. Mallah, J.-F. Dayen, Electrical read-out of light-induced spin transition in thin film spin crossover/graphene heterostructures, Journal of Materials Chemistry C 9 (2021) 2712–2720. https://doi.org/10.1039/d0tc05202g.
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L. Koerber, A. Hempel, A. Otto, R.A. Gallardo, Y. Henry, J. Lindner, A. Kakay, Finite-element dynamic-matrix approach for propagating spin waves: Extension to mono- and multi-layers of arbitrary spacing and thickness, AIP ADVANCES 12 (2022) 115206. https://doi.org/10.1063/5.0107457.
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R. Knapman, M. Azhar, A. Pignedoli, L. Gallard, R. Hertel, J. Leliaert, K. Everschor-Sitte, Numerical calculation of the Hopf index for three-dimensional magnetic textures, Physical Review B 111 (2025) 134408. https://doi.org/10.1103/PhysRevB.111.134408.
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C. Hu, X. Henning, D. Stoeffler, L. Schlur, G. Versini, C. Leuvrey, F. Roulland, U.-C. Chung, T. Fix, A. Dinia, M.V. Rastei, S. Colis, Impact of Bi Vacancies on the Polarization and Transport Properties of Bi2FeCrO6 Thin Films, ACS Applied Electronic Materials 8 (2026) 2364–2372. https://doi.org/10.1021/acsaelm.5c02590.
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T. Hickel, S. Divinski, S. Starikov, F. Soisson, C. Mény, O. Hegde, M. Gerlitz, G. Magnifouet, A. Schneider, C. Barreteau, I. Mirebeau, V. Tran, G. Förster, A. Front, A. Egorov, G. Wilde, H. Amara, T. Hammerschmidt, M. Mrovec, V. Pierron-Bohnes, R. Drautz, C. Fu, Magnetism in iron alloys: methodological advances for thermodynamics, defects, and kinetics, International Journal of Materials Research 116 (2025) 474–525. https://doi.org/10.1515/ijmr-2023-0225.
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G. Gubbiotti, A. Barman, S. Ladak, C. Bran, D. Grundler, M. Huth, H. Plank, G. Schmidt, S. van Dijken, R. Streubel, O.V. Dobrovolskiy, V. Scagnoli, L.J. Heyderman, C. Donnelly, O. Hellwig, L. Fallarino, M.B. Jungfleisch, A. Farhan, N. Maccaferri, P. Vavassori, P. Fischer, R. Tomasello, G. Finocchio, R. Clerac, R. Sessoli, D. Makarov, D. Sheka, M. Krawczyk, R.A. Gallardo, P. Landeros, M. d’Aquino, R. Hertel, P. Pirro, F. Ciubotaru, M. Becherer, J. Gartside, T. Ono, P. Bortolotti, A. Fernandez-Pacheco, 2025 Roadmap on 3D Nano-magnetism., Journal of Physics. Condensed Matter 37 (2025) 143502. https://doi.org/10.1088/1361-648X/ad9655.
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M. Gołębiewski, R. Hertel, M. d’Aquino, V. Vasyuchka, M. Weiler, P. Pirro, M. Krawczyk, S. Fukami, H. Ohno, J. Llandro, Collective Spin-Wave Dynamics in Gyroid Ferromagnetic Nanostructures, ACS Appl. Mater. Interfaces 16 (2024) 22177–22188. https://doi.org/10.1021/acsami.4c02366.
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L. Gallard, R. Hertel, Topological characterization of Hopfions in finite-element micromagnetics, Journal of Applied Physics 138 (2025) 043907. https://doi.org/10.1063/5.0280041.
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B. Flebus, D. Grundler, B. Rana, Y. Otani, I. Barsukov, A. Barman, G. Gubbiotti, P. Landeros, J. Akerman, U. Ebels, P. Pirro, V.E. Demidov, K. Schultheiss, G. Csaba, Q. Wang, F. Ciubotaru, D.E. Nikonov, P. Che, R. Hertel, T. Ono, D. Afanasiev, J. Mentink, T. Rasing, B. Hillebrands, S.V. Kusminskiy, W. Zhang, C.R. Du, A. Finco, T. van der Sar, Y.K. Luo, Y. Shiota, J. Sklenar, T. Yu, J. Rao, The 2024 magnonics roadmap, Journal of Physics: Condensed Matter 36 (2024) 363501. https://doi.org/10.1088/1361-648X/ad399c.
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T. Fix, Y. Zakaria, D. Stoeffler, D. Muller, A. Dinia, A. Slaoui, Sensitive Bandgap Reduction of SrTiO3 through Incorporation of Sulfur Using Ion Implantation, Solar RRL (2024) 2400237. https://doi.org/10.1002/solr.202400237.
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M.-C. Ettobi, C. Tamin, A.K. Bharwal, S. Roques, C. Chevalier, A. Slaoui, A. Dinia, A. Fave, E. Fourmond, D. Stoeffler, T. Fix, Fabrication and Optimization of Type II Silicon Clathrate Films., JOVE : Journal of Visualized Experiments (2025) e69215. https://doi.org/10.3791/69215.
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E.A. Eliseev, A.N. Morozovska, R. Hertel, H.V. Shevliakova, Y.M. Fomichov, V.Y. Reshetnyak, D.R. Evans, Flexo-elastic control factors of domain morphology in core-shell ferroelectric nanoparticles: Soft and rigid shells, Acta Materialia 212 (2021) 116889. https://doi.org/10.1016/j.actamat.2021.116889.
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M. d’Aquino, R. Hertel, Nonreciprocal Inertial Spin-Wave Dynamics in Twisted Magnetic Nanostrips, Phys. Rev. Lett. 135 (2025) 216705. https://doi.org/10.1103/gvwf-fsz6.
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M. d’Aquino, S. Perna, M. Pancaldi, R. Hertel, S. Bonetti, C. Serpico, Micromagnetic study of inertial spin waves in ferromagnetic nanodots, Physical Review B 107 (2023) 144412. https://doi.org/10.1103/PhysRevB.107.144412.
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M. d’Aquino, R. Hertel, Micromagnetic frequency-domain simulation methods for magnonic systems, Journal of Applied Physics 133 (2023) 033902. https://doi.org/10.1063/5.0131922.
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A.V. Chumak, P. Kabos, M. Wu, C. Abert, C. Adelmann, A.O. Adeyeye, J. Åkerman, F.G. Aliev, A. Anane, A. Awad, C.H. Back, A. Barman, G.E.W. Bauer, M. Becherer, E.N. Beginin, V.A.S.V. Bittencourt, Y.M. Blanter, P. Bortolotti, I. Boventer, D.A. Bozhko, S.A. Bunyaev, J.J. Carmiggelt, R.R. Cheenikundil, F. Ciubotaru, S. Cotofana, G. Csaba, O.V. Dobrovolskiy, C. Dubs, M. Elyasi, K.G. Fripp, H. Fulara, I.A. Golovchanskiy, C. Gonzalez-Ballestero, P. Graczyk, D. Grundler, P. Gruszecki, G. Gubbiotti, K. Guslienko, A. Haldar, S. Hamdioui, R. Hertel, B. Hillebrands, T. Hioki, A. Houshang, C.-M. Hu, H. Huebl, M. Huth, E. Iacocca, M.B. Jungfleisch, G.N. Kakazei, A. Khitun, R. Khymyn, T. Kikkawa, M. Kläui, O. Klein, J.W. Kłos, S. Knauer, S. Koraltan, M. Kostylev, M. Krawczyk, I.N. Krivorotov, V.V. Kruglyak, D. Lachance-Quirion, S. Ladak, R. Lebrun, Y. Li, M. Lindner, R. Macêdo, S. Mayr, G.A. Melkov, S. Mieszczak, Y. Nakamura, H.T. Nembach, A.A. Nikitin, S.A. Nikitov, V. Novosad, J.A. Otálora, Y. Otani, A. Papp, B. Pigeau, P. Pirro, W. Porod, F. Porrati, H. Qin, B. Rana, T. Reimann, F. Riente, O. Romero-Isart, A. Ross, A.V. Sadovnikov, A.R. Safin, E. Saitoh, G. Schmidt, H. Schultheiss, K. Schultheiss, A.A. Serga, S. Sharma, J.M. Shaw, D. Suess, O. Surzhenko, K. Szulc, T. Taniguchi, M. Urbánek, K. Usami, A.B. Ustinov, T. van der Sar, S. van Dijken, V.I. Vasyuchka, R. Verba, S.V. Kusminskiy, Q. Wang, M. Weides, M. Weiler, S. Wintz, S.P. Wolski, X. Zhang, Advances in Magnetics Roadmap on Spin-Wave Computing, IEEE Transactions on Magnetics 58 (2022) 1–72. https://doi.org/10.1109/TMAG.2022.3149664.
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S. Cherifi-Hertel, C. Voulot, U. Acevedo-Salas, Y. Zhang, O. Crégut, K.D. Dorkenoo, R. Hertel, Shedding light on non-Ising polar domain walls: Insight from second harmonic generation microscopy and polarimetry analysis, Journal of Applied Physics 129 (2021) 081101. https://doi.org/10.1063/5.0037286.
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R. Cheenikundil, M. d’Aquino, R. Hertel, Defect-sensitive high-frequency modes in a three-dimensional artificial magnetic crystal, NPJ Computational Materials 11 (2025) 297. https://doi.org/10.1038/s41524-025-01784-2.

Microwave spectroscopy : Presentation

Microwave spectroscopy : Current-Induced Spin-Wave Doppler Shift

Microwave spectroscopy : Dynamical micromagnetism

Micromagnetism : Fundamental Research

Micromagnetism : Gallery

Micromagnetism : Development and Implementation of Numerical Methods

Micromagnetism : TetraMAG

Magneto-transport, tunnel junction : Electrical switching in Fe/Cr/MgO/Fe magnetic tunnel junctions

Magneto-transport, tunnel junction : Transport in tunnel junctions

Magneto-transport, tunnel junction : Current induced domain wall states in nanopillars