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Publications (10 of 14) Show all publications
Neeraj, K., Pancaldi, M., Scalera, V., Perna, S., D'Aquino, M., Serpico, C. & Bonetti, S. (2022). Magnetization switching in the inertial regime. Physical Review B, 105(5), Article ID 054415.
Open this publication in new window or tab >>Magnetization switching in the inertial regime
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2022 (English)In: Physical Review B, ISSN 2469-9950, E-ISSN 2469-9969, Vol. 105, no 5, article id 054415Article in journal (Refereed) Published
Abstract [en]

We have numerically solved the Landau-Lifshitz-Gilbert (LLG) equation in its standard and inertial forms to study the magnetization switching dynamics in a 3d thin film ferromagnet. The dynamics is triggered by ultrashort magnetic field pulses of varying width and amplitude in the picosecond and Tesla range. We have compared the solutions of the two equations in terms of switching characteristic, speed, and energy analysis. Both equations return qualitatively similar switching dynamics, characterized by regions of slower precessional behavior and faster ballistic motion. In the case of inertial dynamics, ballistic switching is found in a 25% wider region in the parameter space given by the magnetic field amplitude and width. The energy analysis of the dynamics is qualitatively different for the standard and inertial LLG equations. In the latter case, an extra energy channel, interpreted as the kinetic energy of the system, is available. Such an extra channel is responsible for a resonant energy absorption at THz frequencies, consistent with the occurrence of spin nutation.

National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:su:diva-203122 (URN)10.1103/PhysRevB.105.054415 (DOI)000761170600003 ()2-s2.0-85125181724 (Scopus ID)
Available from: 2022-03-24 Created: 2022-03-24 Last updated: 2022-03-24Bibliographically approved
Zhou Hagström, N., Pancaldi, M., Neeraj, K., Polley, D. & Bonetti, S. (2022). Megahertz-rate ultrafast X-ray scattering and holographic imaging at the European XFEL. Journal of Synchrotron Radiation, 29, 1454-1464
Open this publication in new window or tab >>Megahertz-rate ultrafast X-ray scattering and holographic imaging at the European XFEL
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2022 (English)In: Journal of Synchrotron Radiation, ISSN 0909-0495, E-ISSN 1600-5775, Vol. 29, p. 1454-1464Article in journal (Refereed) Published
Abstract [en]

The advent of X-ray free-electron lasers (XFELs) has revolutionized fundamental science, from atomic to condensed matter physics, from chemistry to biology, giving researchers access to X-rays with unprecedented brightness, coherence and pulse duration. All XFEL facilities built until recently provided X-ray pulses at a relatively low repetition rate, with limited data statistics. Here, results from the first megahertz-repetition-rate X-ray scattering experiments at the Spectroscopy and Coherent Scattering (SCS) instrument of the European XFEL are presented. The experimental capabilities that the SCS instrument offers, resulting from the operation at megahertz repetition rates and the availability of the novel DSSC 2D imaging detector, are illustrated. Time-resolved magnetic X-ray scattering and holographic imaging experiments in solid state samples were chosen as representative, providing an ideal test-bed for operation at megahertz rates. Our results are relevant and applicable to any other non-destructive XFEL experiments in the soft X-ray range.

Keywords
holography, magnetic X-ray scattering, soft X-rays, ultrafast X-ray imaging
National Category
Atom and Molecular Physics and Optics
Identifiers
urn:nbn:se:su:diva-213539 (URN)10.1107/S1600577522008414 (DOI)000886922500015 ()36345754 (PubMedID)2-s2.0-85141894677 (Scopus ID)
Available from: 2023-01-09 Created: 2023-01-09 Last updated: 2023-01-09Bibliographically approved
Le Guyader, L., Higley, D. J., Pancaldi, M., Liu, T., Chen, Z., Chase, T., . . . Dürr, H. A. (2022). State-resolved ultrafast charge and spin dynamics in [Co/Pd] multilayers. Applied Physics Letters, 120(3), Article ID 032401.
Open this publication in new window or tab >>State-resolved ultrafast charge and spin dynamics in [Co/Pd] multilayers
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2022 (English)In: Applied Physics Letters, ISSN 0003-6951, E-ISSN 1077-3118, Vol. 120, no 3, article id 032401Article in journal (Refereed) Published
Abstract [en]

We use transient absorption spectroscopy with circularly polarized x rays to detect laser-excited hole states below the Fermi level and compare their dynamics with that of unoccupied states above the Fermi level in ferromagnetic [Co/Pd] multilayers. While below the Fermi level, an instantaneous and significantly stronger demagnetization is observed, above the Fermi level, the demagnetization is delayed by 35 ± 10 fs. This provides a direct visualization of how ultrafast demagnetization proceeds via initial spin-flip scattering of laser-excited holes to the subsequent formation of spin waves. 

National Category
Atom and Molecular Physics and Optics
Identifiers
urn:nbn:se:su:diva-204380 (URN)10.1063/5.0076953 (DOI)000779205300016 ()2-s2.0-85123756570 (Scopus ID)
Available from: 2022-05-04 Created: 2022-05-04 Last updated: 2022-05-04Bibliographically approved
Leo, N., Pancaldi, M., Koraltan, S., Villalba González, P., Abert, C., Vogler, C., . . . Vavassori, P. (2021). Chiral switching and dynamic barrier reductions in artificial square ice. New Journal of Physics, 23(3), Article ID 033024.
Open this publication in new window or tab >>Chiral switching and dynamic barrier reductions in artificial square ice
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2021 (English)In: New Journal of Physics, E-ISSN 1367-2630, Vol. 23, no 3, article id 033024Article in journal (Refereed) Published
Abstract [en]

Collective dynamics in lithographically-defined artificial spin ices offer profound insights into emergent correlations and phase transitions of geometrically-frustrated Ising spin systems. Their temporal and spatial evolution are often simulated using kinetic Monte Carlo (kMC) simulations, which rely on the precise knowledge of the switching barriers to obtain predictive results in agreement with experimental observations. In many cases, however, the barriers are derived from simplified assumptions only, and do not take into account the full physical picture of nanomagnetic switching. Here we describe how the immediate magnetic square- or kagome-ice environment of a nanomagnet reversing via quasi-coherent rotation can induce clockwise and counter-clockwise switching channels with different barrier energies. This energy splitting for chiral reversal channels can be sizeable and, as string-method micromagnetic simulations show, is relevant for artificial spin ice systems made of both exchange- as well as magnetostatically-dominated units. Due to the barrier splitting and further reductions due to non-uniform reversal, transition rates can be exponentially enhanced by several orders of magnitude compared to mean-field predictions, especially in the limit of rare switching events where thermal excitation is less likely. This leads to significantly faster relaxation time scales and modified spatial correlations. Our findings are thus of integral importance to achieve realistic kMC simulations of emergent correlations in artificial spin systems, magnonic crystals, or the evolution of nanomagnetic logic circuits.

Keywords
artificial spin systems, magnetisation switching, micromagnetic modelling, Monte Carlo simulations, dipole approximation
National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-194550 (URN)10.1088/1367-2630/abe3ad (DOI)000637831100001 ()
Available from: 2021-08-01 Created: 2021-08-01 Last updated: 2024-01-17Bibliographically approved
Ksenzov, D., Maznev, A. A., Unikandanunni, V., Bencivenga, F., Capotondi, F., Caretta, A., . . . Gutt, C. (2021). Nanoscale Transient Magnetization Gratings Created and Probed by Femtosecond Extreme Ultraviolet Pulses. Nano Letters, 21(7), 2905-2911
Open this publication in new window or tab >>Nanoscale Transient Magnetization Gratings Created and Probed by Femtosecond Extreme Ultraviolet Pulses
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2021 (English)In: Nano Letters, ISSN 1530-6984, E-ISSN 1530-6992, Vol. 21, no 7, p. 2905-2911Article in journal (Refereed) Published
Abstract [en]

We utilize coherent femtosecond extreme ultraviolet (EUV) pulses from a free electron laser (FEL) to generate transient periodic magnetization patterns with periods as short as 44 nm. Combining spatially periodic excitation with resonant probing at the M-edge of cobalt allows us to create and probe transient gratings of electronic and magnetic excitations in a CoGd alloy. In a demagnetized sample, we observe an electronic excitation with a rise time close to the FEL pulse duration and similar to 0.5 ps decay time indicative of electron-phonon relaxation. When the sample is magnetized to saturation in an external field, we observe a magnetization grating, which appears on a subpicosecond time scale as the sample is demagnetized at the maxima of the EUV intensity and then decays on the time scale of tens of picoseconds via thermal diffusion. The described approach opens multiple avenues for studying dynamics of ultrafast magnetic phenomena on nanometer length scales.

Keywords
spin, X-rays, free-electron laser, membranes, heat transfer, nanoscale, magnetism, time-resolved imaging, transient grating
National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-194157 (URN)10.1021/acs.nanolett.0c05083 (DOI)000641160500028 ()33724854 (PubMedID)2-s2.0-85103777211 (Scopus ID)
Available from: 2021-06-14 Created: 2021-06-14 Last updated: 2022-11-11Bibliographically approved
Bossini, D., Pancaldi, M., Soumah, L., Basini, M., Mertens, F., Cinchetti, M., . . . Bonetti, S. (2021). Ultrafast Amplification and Nonlinear Magnetoelastic Coupling of Coherent Magnon Modes in an Antiferromagnet. Physical Review Letters, 127(7), Article ID 077202.
Open this publication in new window or tab >>Ultrafast Amplification and Nonlinear Magnetoelastic Coupling of Coherent Magnon Modes in an Antiferromagnet
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2021 (English)In: Physical Review Letters, ISSN 0031-9007, E-ISSN 1079-7114, Vol. 127, no 7, article id 077202Article in journal (Refereed) Published
Abstract [en]

We investigate the role of domain walls in the ultrafast magnon dynamics of an antiferromagnetic NiO single crystal in a pump-probe experiment with variable pump photon energy. Analyzing the amplitude of the energy-dependent photoinduced ultrafast spin dynamics, we detect a yet unreported coupling between the material's characteristic terahertz- and gigahertz-magnon modes. We explain this unexpected coupling between two orthogonal eigenstates of the corresponding Hamiltonian by modeling the magnetoelastic interaction between spins in different domains. We find that such interaction, in the nonlinear regime, couples the two different magnon modes via the domain walls and it can be optically exploited via the exciton-magnon resonance.

National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-196872 (URN)10.1103/PhysRevLett.127.077202 (DOI)000684276900007 ()34459640 (PubMedID)2-s2.0-85113135110 (Scopus ID)
Available from: 2021-09-17 Created: 2021-09-17 Last updated: 2022-11-11Bibliographically approved
Koraltan, S., Pancaldi, M., Leo, N., Abert, C., Vogler, C., Hofhuis, K., . . . Suess, D. (2020). Dependence of energy barrier reduction on collective excitations in square artificial spin ice: A comprehensive comparison of simulation techniques. Physical Review B, 102(6), Article ID 064410.
Open this publication in new window or tab >>Dependence of energy barrier reduction on collective excitations in square artificial spin ice: A comprehensive comparison of simulation techniques
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2020 (English)In: Physical Review B, ISSN 2469-9950, E-ISSN 2469-9969, Vol. 102, no 6, article id 064410Article in journal (Refereed) Published
Abstract [en]

We perform micromagnetic simulations to study the switching barriers in square artificial spin ice systems consisting of elongated single domain magnetic islands arranged on a square lattice. By considering a double vertex composed of one central island and six nearest neighbor islands, we calculate the energy barriers between two types of double vertices by applying the simplified and improved string method. We investigate by means of micromagnetic simulations the consequences of the neighboring islands, the inhomogeneities in the magnetization of the islands and the reversal mechanisms on the energy barrier by comparing three different approaches with increasing complexity. The micromagnetic models, where the string method is applied, are compared to a method commonly in use, the mean barrier approximation. Our investigations indicate that a proper micromagnetic modeling of the switching process leads to significantly lower energy barriers, by up to 35% compared to the mean-barrier approximation, so decreasing the expected average life time up to seven orders of magnitude. Hereby, we investigate the influence of parallel switching channels and the conceptional approach of using a mean-barrier to calculate the corresponding rates.

National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-185376 (URN)10.1103/PhysRevB.102.064410 (DOI)000558592500004 ()
Available from: 2020-10-14 Created: 2020-10-14 Last updated: 2022-02-25Bibliographically approved
López-Ortega, A., Zapata-Herrera, M., Maccaferri, N., Pancaldi, M., Garcia, M., Chuvilin, A. & Vavassori, P. (2020). Enhanced magnetic modulation of light polarization exploiting hybridization with multipolar dark plasmons in magnetoplasmonic nanocavities. Light: Science & Applications, 9(1), Article ID 49.
Open this publication in new window or tab >>Enhanced magnetic modulation of light polarization exploiting hybridization with multipolar dark plasmons in magnetoplasmonic nanocavities
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2020 (English)In: Light: Science & Applications, ISSN 2095-5545, E-ISSN 2047-7538, Vol. 9, no 1, article id 49Article in journal (Refereed) Published
Abstract [en]

Enhancing magneto-optical effects is crucial for reducing the size of key photonic devices based on the non-reciprocal propagation of light and to enable active nanophotonics. Here, we disclose a currently unexplored approach that exploits hybridization with multipolar dark modes in specially designed magnetoplasmonic nanocavities to achieve a large enhancement of the magneto-optically induced modulation of light polarization. The broken geometrical symmetry of the design enables coupling with free-space light and hybridization of the multipolar dark modes of a plasmonic ring nanoresonator with the dipolar localized plasmon resonance of the ferromagnetic disk placed inside the ring. This hybridization results in a low-radiant multipolar Fano resonance that drives a strongly enhanced magneto-optically induced localized plasmon. The large amplification of the magneto-optical response of the nanocavity is the result of the large magneto-optically induced change in light polarization produced by the strongly enhanced radiant magneto-optical dipole, which is achieved by avoiding the simultaneous enhancement of re-emitted light with incident polarization by the multipolar Fano resonance. The partial compensation of the magneto-optically induced polarization change caused by the large re-emission of light with the original polarization is a critical limitation of the magnetoplasmonic designs explored thus far and that is overcome by the approach proposed here.

National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-181369 (URN)10.1038/s41377-020-0285-0 (DOI)000522559200001 ()32257180 (PubMedID)
Available from: 2020-05-12 Created: 2020-05-12 Last updated: 2022-03-23Bibliographically approved
Zapata-Herrera, M., López-Ortega, A., Maccaferri, N., Pancaldi, M., Garcia, M. & Vavassori, P. (2019). Lighting up magneto-optics to its limit with dark plasmons. In: Said Zouhdi; Antonio Topa (Ed.), META 2019 Lisbon - Portugal: The 10th International Conference on Metamaterials, Photonic Crystals and Plasmonics. Paper presented at 10th International Conference on Metamaterials, Photonic Crystals and Plasmonics, Lisbon, Portugal, July 23-26, 2019 (pp. 1358-1359). META Conference
Open this publication in new window or tab >>Lighting up magneto-optics to its limit with dark plasmons
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2019 (English)In: META 2019 Lisbon - Portugal: The 10th International Conference on Metamaterials, Photonic Crystals and Plasmonics / [ed] Said Zouhdi; Antonio Topa, META Conference , 2019, p. 1358-1359Conference paper, Published paper (Refereed)
Abstract [en]

In this work we present a new strategy to actively enhance the magneto optical activity beyond its current limits by the excitation of a hybrid dark-bright modes in a magnetic-disk/metallic-ring plasmonic nanocavity.

Place, publisher, year, edition, pages
META Conference, 2019
Series
International Conference on Metamaterials, Photonic Crystals and Plasmonics, ISSN 2429-1390 ; 10
National Category
Atom and Molecular Physics and Optics
Identifiers
urn:nbn:se:su:diva-223058 (URN)2-s2.0-85172441565 (Scopus ID)
Conference
10th International Conference on Metamaterials, Photonic Crystals and Plasmonics, Lisbon, Portugal, July 23-26, 2019
Available from: 2023-10-18 Created: 2023-10-18 Last updated: 2023-10-18Bibliographically approved
Hudl, M., d’Aquino, M., Pancaldi, M., Yang, S.-H., Samant, M. G., Parkin, S. S. P., . . . Bonetti, S. (2019). Nonlinear Magnetization Dynamics Driven by Strong Terahertz Fields. Physical Review Letters, 123(19), Article ID 197204.
Open this publication in new window or tab >>Nonlinear Magnetization Dynamics Driven by Strong Terahertz Fields
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2019 (English)In: Physical Review Letters, ISSN 0031-9007, E-ISSN 1079-7114, Vol. 123, no 19, article id 197204Article in journal (Refereed) Published
Abstract [en]

We present a comprehensive experimental and numerical study of magnetization dynamics in a thin metallic film triggered by single-cycle terahertz pulses of ∼20  MV/m electric field amplitude and ∼1  ps duration. The experimental dynamics is probed using the femtosecond magneto-optical Kerr effect, and it is reproduced numerically using macrospin simulations. The magnetization dynamics can be decomposed in three distinct processes: a coherent precession of the magnetization around the terahertz magnetic field, an ultrafast demagnetization that suddenly changes the anisotropy of the film, and a uniform precession around the equilibrium effective field that is relaxed on the nanosecond time scale, consistent with a Gilbert damping process. Macrospin simulations quantitatively reproduce the observed dynamics, and allow us to predict that novel nonlinear magnetization dynamics regimes can be attained with existing tabletop terahertz sources.

National Category
Condensed Matter Physics
Identifiers
urn:nbn:se:su:diva-179969 (URN)10.1103/PhysRevLett.123.197204 (DOI)000517909700005 ()31765192 (PubMedID)2-s2.0-85074915664 (Scopus ID)
Available from: 2020-03-17 Created: 2020-03-17 Last updated: 2023-10-23Bibliographically approved
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0002-4125-3157

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