Добірка наукової літератури з теми "Three-magnon splitting"
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Статті в журналах з теми "Three-magnon splitting"
Körber, L., C. Heins, I. Soldatov, R. Schäfer, A. Kákay, H. Schultheiss, and K. Schultheiss. "Modification of three-magnon splitting in a flexed magnetic vortex." Applied Physics Letters 122, no. 9 (February 27, 2023): 092401. http://dx.doi.org/10.1063/5.0135573.
Повний текст джерелаKurebayashi, Hidekazu, Oleksandr Dzyapko, Vladislav E. Demidov, Dong Fang, A. J. Ferguson, and Sergej O. Demokritov. "Controlled enhancement of spin-current emission by three-magnon splitting." Nature Materials 10, no. 9 (July 3, 2011): 660–64. http://dx.doi.org/10.1038/nmat3053.
Повний текст джерелаIguchi, Ryo, Kazuya Ando, Ryo Takahashi, Toshu An, Eiji Saitoh, and Tetsuya Sato. "Spin Pumping without Three-Magnon Splitting in Polycrystalline Bi1Y2Fe5O12/Pt Bilayer Structure." Japanese Journal of Applied Physics 51, no. 10R (October 1, 2012): 103004. http://dx.doi.org/10.7567/jjap.51.103004.
Повний текст джерелаIguchi, Ryo, Kazuya Ando, Ryo Takahashi, Toshu An, Eiji Saitoh, and Tetsuya Sato. "Spin Pumping without Three-Magnon Splitting in Polycrystalline Bi$_{1}$Y$_{2}$Fe$_{5}$O$_{12}$/Pt Bilayer Structure." Japanese Journal of Applied Physics 51 (October 2, 2012): 103004. http://dx.doi.org/10.1143/jjap.51.103004.
Повний текст джерелаNakata, Kouki. "The temperature dependence of quantum spin pumping generated using electron spin resonance with three-magnon splittings." Journal of Physics: Condensed Matter 25, no. 11 (February 19, 2013): 116005. http://dx.doi.org/10.1088/0953-8984/25/11/116005.
Повний текст джерелаGe, Xu, Roman Verba, Philipp Pirro, Andrii V. Chumak, and Qi Wang. "Nanoscaled magnon transistor based on stimulated three-magnon splitting." Applied Physics Letters 124, no. 12 (March 18, 2024). http://dx.doi.org/10.1063/5.0189619.
Повний текст джерелаKörber, L., K. Schultheiss, T. Hula, R. Verba, J. Fassbender, A. Kákay, and H. Schultheiss. "Nonlocal Stimulation of Three-Magnon Splitting in a Magnetic Vortex." Physical Review Letters 125, no. 20 (November 12, 2020). http://dx.doi.org/10.1103/physrevlett.125.207203.
Повний текст джерелаSødequist, Joachim, and Thomas Olsen. "Two-dimensional altermagnets from high throughput computational screening: Symmetry requirements, chiral magnons, and spin-orbit effects." Applied Physics Letters 124, no. 18 (April 29, 2024). http://dx.doi.org/10.1063/5.0198285.
Повний текст джерелаWang, Yao, Edwin W. Huang, Brian Moritz, and Thomas P. Devereaux. "Magnon Splitting Induced by Charge Transfer in the Three-Orbital Hubbard Model." Physical Review Letters 120, no. 24 (June 11, 2018). http://dx.doi.org/10.1103/physrevlett.120.246401.
Повний текст джерелаMathieu, Christoph, Valeri T. Synogatch, and Carl E. Patton. "Brillouin light scattering analysis of three-magnon splitting processes in yttrium iron garnet films." Physical Review B 67, no. 10 (March 5, 2003). http://dx.doi.org/10.1103/physrevb.67.104402.
Повний текст джерелаДисертації з теми "Three-magnon splitting"
Mouhoub, Asma. "All-inductive observation of linear dynamics and nonlinear processes of spin waves in synthetic antiferromagnets." Electronic Thesis or Diss., université Paris-Saclay, 2024. http://www.theses.fr/2024UPAST147.
Повний текст джерелаSpin waves are the eigen-excitations of magnetic materials. They exhibit specific properties such as nonlinearity. This property makes them potentially suitable for applications in neuromorphic computing and magnonic logic devices. Synthetic antiferromagnets (SAFs), composed of two ferromagnetic layers separated by a non-magnetic layer that favors antiparallel magnetizations, are particularly effective for studying the nonlinearity of spin waves. A comprehensive understanding of the magnetic properties of SAFs is essential before exploring their nonlinear properties. The interlayer coupling is a degree of freedom that confers a large tunability to SAFs, which allows their customization in several spintronics applications. The efficient use of this magnetic configuration requires an in-depth understanding of the magnetic properties and their correlation with the material structure. We established a reliable procedure to quantify the interlayer exchange coupling and the intralayer exchange stiffness in SAF. We applied this procedure to the ultrasmooth and amorphous Co₄₀Fe₄₀B₂₀ (tmag)/Ru (0.7 nm)/CoFeB (tmag) structure. The complex interplay between the two exchange interactions results in a gradient of the magnetization orientation across the thickness of the stack, which alters the hysteresis and the spin wave eigenmodes of the stack in a nontrivial way. We measured the frequency-field dependence of the first four spin waves confined within the thickness of the stack. We modeled these frequencies and the corresponding thickness profiles of these spin waves using micromagnetic simulations. The comparison with the experimental results allows us to deduce the magnetic parameters that best account for the sample behavior. The exchange stiffness is Aex = 16 ± 2 pJ/m, independent of the film thickness. The interlayer exchange coupling starts from -1.7 mJ/m2 for the thinnest layers and it can be maintained above -1.3 mJ/m2 for CoFeB layers that are as thick as 40 nm. Frequency-field dependence allows the identification of conditions that exhibit nonlinear interactions. For specific configurations of the applied static magnetic field HDC the frequency of the acoustic magnon mode (fac) becomes half of the optical magnon mode frequency (fop), a favorable condition to investigate nonlinear phenomena in SAF. We developed an experimental setup based on propagating spin wave spectroscopy and we investigated the nonlinear processes inductively by varying the applied field HDC, the pumping frequency and the microwave power arriving at the simple. Two phenomena are observed: the doublets near fpump/2 evidence a three-magnon process where one optical magnon at fpump split into two acoustic magnons at fpump/2 - δ and fpump/2 + δ. 2). A strong halo around fpump could be a four-magnon scattering process, in which two optical magnons at fpump annihilate and create two new optical magnons. We focused on the three-magnon splitting process on a device patterned by optical lithography, featuring a 1.8 μm wide single-wire antenna. We showed that the population of the created magnons varies exponentially with the amplitude of the rf excitations above a certain threshold, which is 1.8 mT. Furthermore, to explore the dynamics of magnon creation, we apply rf pulses with various durations. We developed an analytical model that we compared to the experiment to effectively determine the growth rate of the population of the acoustic mode. To investigate spin waves in confined nanometric geometries, we fabricated new devices using electron beam lithography that feature 100 nm and 150 nm wide U-shaped antennas on top of magnetic conduits. This enables the excitation over a large range of wavevectors ∆k = 10 rad/μm corresponding to a frequency interval of ∆f = 4.13 GHz. In contrast to the 1.8 μm wide antenna, which excites a narrower range of wavevectors ∆k = 2 rad/μm corresponding to ∆f = 0.64 GHz
Частини книг з теми "Three-magnon splitting"
Dzyapko, Oleksandr, Hidekazu Kurebayashi, Vladislav E. Demidov, and Sergej O. Demokritov. "Control of Pure Spin Current by Magnon Tunneling and Three-Magnon Splitting in Insulating Yttrium Iron Garnet Films." In Recent Advances in Magnetic Insulators – From Spintronics to Microwave Applications, 83–122. Elsevier, 2013. http://dx.doi.org/10.1016/b978-0-12-408130-7.00004-6.
Повний текст джерелаТези доповідей конференцій з теми "Three-magnon splitting"
Matsuura, Saki, Takaharu Tashiro, and Kazuya Ando. "Three-magnon splitting controlled by temperature." In SPIE NanoScience + Engineering, edited by Henri-Jean Drouhin, Jean-Eric Wegrowe, and Manijeh Razeghi. SPIE, 2014. http://dx.doi.org/10.1117/12.2059892.
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