Showing entries 1 - 20 out of 427
Kraft, R., Bruckner, F., Suess, D., & Abert, C. (2026). jaxFMM: An adaptive, GPU-parallel implementation of the fast multipole method in JAX. Journal of Computational Physics, 564, Article 115130. https://doi.org/10.1016/j.jcp.2026.115130
Smith, J., Slanovc, F., Stipsitz, M., Ortner, M., & Suess, D. (2026). Machine learning assisted analytical field calculation of anisotropic cuboid magnets. Journal of Magnetism and Magnetic Materials, 654, Article 174246. https://doi.org/10.1016/j.jmmm.2026.174246
Koraltan, S., Gupta, R., Pradeep, R. P., Kammerbauer, F., Kononenko, I., Prügl, K., Kirsch, M., Aichner, B., Helbig, S., Bruckner, F., Abert, C., Mandru, A. O., Satz, A., Jakob, G., Hug, H. J., Kläui, M., & Suess, D. (2026). Three-Dimensional Anomalous Hall Sensing Enabled By Spin–Orbit Torque Driven Domain Reconfiguration In Chiral Multilayers. Advanced Functional Materials, Article e00059. Advance online publication. https://doi.org/10.1002/adfm.202600059
Kosogor, A., Umetsu, R. Y., Huang, Y. C., Velyhotskyi, D., L'vov, V. A., Xu, X., & Kainuma, R. (2026). Compositional dependence of magnetic state and thermodynamic properties of Ni50Mn50-xSnx alloys. Journal of Alloys and Compounds, 1078, Article 189750. https://doi.org/10.1016/j.jallcom.2026.189750
Vilsmeier, F., Bruckner, F., Abert, C., Suess, D., & Chumak, A. V. (2026). Perspectives on inverse design for AI magnonics. arXiv. https://arxiv.org/abs/2607.07324
Soprunyuk, V., Tröster, A., Pils, J., Schranz, W., Rychetsky, I., Klic, A., & Carpenter, M. A. (2026). Ferroelastic domain wall motion and collective domain switching in RbSCN. Physical Review B, 114(3), Article 034113. https://doi.org/10.48550/arXiv.2606.30125, https://doi.org/10.1103/rmsb-fvm3
Voronov, A. A., Levchenko, K. O., Verba, R., Davídková, K., Dubs, C., Urbánek, M., Wang, Q., Suess, D., Abert, C., & Chumak, A. V. (2026). Exchange spin-wave propagation in gallium-substituted yttrium iron garnet nanowaveguides. Physical Review Applied, 26(1), Article 014103. https://doi.org/10.48550/arXiv.2509.05050, https://doi.org/10.1103/w648-z6zq
Schmidt, T., Koraltan, S., Niermann, T., Niermann, L., Suess, D., & Albrecht, M. (2026). Magnetic-field-induced topological transitions of spin textures in ferrimagnetic Gd/Fe thin films. Physical Review Applied, 26(1), Article 014060. https://doi.org/10.1103/t253-8yj1
Gokita, T., Jurczyk, J., Leo, N., Koraltan, S., Anadón, A., Cascales-Sandoval, M. A., Belkhou, R., Abert, C., Suess, D., Donnelly, C., & Fernández-Pacheco, A. (2026). Magnetization reversal mechanism of double-helix nanowires probed by dark-field magneto-optical Kerr effect. Applied Physics Letters, 128(24), Article 242401. https://doi.org/10.48550/arXiv.2601.08613, https://doi.org/10.1063/5.0323326
Höfinger, A., Voronov, A. A., Schmoll, D., Koraltan, S., Bruckner, F., Abert, C., Suess, D., Lindner, M., Reimann, T., Dubs, C., Chumak, A. V., & Knauer, S. (2026). k-Selective Electrical-to-Magnon Transduction with Realistic Field-distributed Nanoantennas. Advanced Physics Research, 5(6), Article e00211. https://doi.org/10.1002/apxr.202500211
Ackermann, R. H., Falmbigl, S., Hadden, E., Leprou, A. D., Filter-Pieler, H., Jenke, T., Klepp, J., Pruner, C., Tomita, Y., & Fally, M. (2026). Commissioning measurements for a very cold neutron interferometer based on nanodiamond-polymer composite gratings. In R. R. McLeod, I. P. Villalobos, & Y. Tomita (Eds.), Photosensitive Materials and their Applications IV (Vol. 14102). Article 1410207 SPIE. https://doi.org/10.48550/arXiv.2604.09312, https://doi.org/10.1117/12.3107915
Koraltan, S., Sunny, J., Karaman, T., Peremadathil-Pradeep, R., Darwin, E., Büttner, F., Suess, D., Hug, H. J., & Albrecht, M. (2026). Magnetic Force Microscopy Signatures of Higher-Order Skyrmions and Antiskyrmions. Advanced Functional Materials, 36(41), Article e25716. https://doi.org/10.1002/adfm.202525716
Serha, R. O., Mcallister, K. H., Majcen, F., Knauer, S., Reimann, T., Dubs, C., Melkov, G. A., Serga, A. A., Tyberkevych, V. S., Chumak, A. V., & Bozhko, D. A. (2026). Ultralong-living magnons in the quantum limit. Science Advances, 12(18), Article eaee2344. https://doi.org/10.1126/sciadv.aee2344
Rychetsky, I., Klic, A., & Schranz, W. (2026). Electromechanical properties of the 180◦ domain wall in PbTiO3. Physical Review B, 113, Article 134117. https://doi.org/10.48550/arXiv.2512.15498, https://doi.org/10.1103/qql4-52vr
Steinbauer, M. K., Flauger, P., Küß, M., Glamsch, S., Nysten, E. D. S., Weiß, M., Suess, D., Krenner, H. J., Albrecht, M., & Abert, C. (2026). Magnetically programmable surface acoustic wave filters: device concept and predictive modeling. npj Spintronics, 4(1), Article 13. https://doi.org/10.48550/arXiv.2507.23456, https://doi.org/10.1038/s44306-026-00132-4
Morales-Fernández, P., Konstantinos-Douveas, I., Abert, C., Zhakina, E., Ruiz-Gómez, S., Fernández-González, C., Turnbull, L. A., Wintz, S., König, M., Finizio, S., Weigand, M., Leo, N., Suess, D., Hierro-Rodríguez, A., Fernández-Pacheco, A., & Donnelly, C. (2026). Resonant Domain Wall Dynamics in a Three-Dimensional Magnetic Nano Double Helix. Advanced Materials, Article e00004. Advance online publication. https://doi.org/10.1002/adma.202600004
Titze, T., Koraltan, S., Schmidt, T., Matthies, M., Fernández-Pacheco, A., Suess, D., Albrecht, M., Mathias, S., & Steil, D. (2026). Controlling Bubble and Skyrmion Lattice Order and Dynamics via Stripe Domain Engineering in Ferrimagnetic Fe/Gd Multilayers. Advanced Physics Research, 5(3), Article e00194. https://doi.org/10.48550/arXiv.2510.21320, https://doi.org/10.1002/apxr.202500194
Zhakina, E., Turnbull, L. A., Xu, W., König, M., Simon, P., Carrillo-Cabrera, W., Fernández-Pacheco, A., Vool, U., Suess, D., Abert, C., Fomin, V. M., & Donnelly, C. (2026). Reconfigurable Three-Dimensional Superconducting Nanoarchitectures. Advanced Functional Materials, 36(20), Article 2506057. https://doi.org/10.1002/adfm.202506057
Flauger, P., Küß, M., Steinbauer, M. K., Bruckner, F., Emhofer, B., Nysten, E., Weiß, M., Suess, D., Krenner, H. J., Albrecht, M., & Abert, C. (2026). Modeling magnetoelastic wave interactions in magnetic films and heterostructures: A finite-difference approach. Physical Review Applied, 25(3), Article 034050. https://doi.org/10.48550/arXiv.2509.06007, https://doi.org/10.1103/9txq-sc8f
Dobrovolskiy, O., Suderow, H., Tafuri, F., Black-Schaffer, A. M., Lado, J. L., Sudbø, A., Stornaioulo, D., Li, C., Böhmer, A. E., Tran, L. M., Zaleski, A. J., Crisan, A., Polichetti, M., Galluzzi, A., Gencer, A., Aichner, B., Barišić, N., Lang, W., Samuely, T., ... Massarotti, D. (2026). Roadmap on nanoscale superconductivity for quantum technologies. Superconductor Science & Technology, 39(2), Article 023502. https://doi.org/10.1088/1361-6668/ae3030
