Gerrit E. W. Bauer
Tohoku University
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Featured researches published by Gerrit E. W. Bauer.
Nature Materials | 2017
Sibylle Meyer; Y-T Chen; Simon Wimmer; Matthias Althammer; Thomas Wimmer; Richard Schlitz; Stephan Geprägs; Hans Huebl; D. Ködderitzsch; H. Ebert; Gerrit E. W. Bauer; Rudolf Gross; Sebastian T. B. Goennenwein
The observation of the spin Hall effect triggered intense research on pure spin current transport. With the spin Hall effect, the spin Seebeck effect and the spin Peltier effect already observed, our picture of pure spin current transport is almost complete. The only missing piece is the spin Nernst (-Ettingshausen) effect, which so far has been discussed only on theoretical grounds. Here, we report the observation of the spin Nernst effect. By applying a longitudinal temperature gradient, we generate a pure transverse spin current in a Pt thin film. For readout, we exploit the magnetization-orientation-dependent spin transfer to an adjacent yttrium iron garnet layer, converting the spin Nernst current in Pt into a controlled change of the longitudinal and transverse thermopower voltage. Our experiments show that the spin Nernst and the spin Hall effect in Pt are of comparable magnitude, but differ in sign, as corroborated by first-principles calculations.
Nature Communications | 2017
Yusuke Hashimoto; Shunsuke Daimon; Ryo Iguchi; Yasuyuki Oikawa; Ka Shen; Koji Sato; Davide Bossini; Yutaka Tabuchi; Takuya Satoh; B. Hillebrands; Gerrit E. W. Bauer; T. H. Johansen; Andrei Kirilyuk; T.H.M. Rasing; Eiji Saitoh
To know the properties of a particle or a wave, one should measure how its energy changes with its momentum. The relation between them is called the dispersion relation, which encodes essential information of the kinetics. In a magnet, the wave motion of atomic spins serves as an elementary excitation, called a spin wave, and behaves like a fictitious particle. Although the dispersion relation of spin waves governs many of the magnetic properties, observation of their entire dispersion is one of the challenges today. Spin waves whose dispersion is dominated by magnetostatic interaction are called pure-magnetostatic waves, which are still missing despite of their practical importance. Here, we report observation of the band dispersion relation of pure-magnetostatic waves by developing a table-top all-optical spectroscopy named spin-wave tomography. The result unmasks characteristics of pure-magnetostatic waves. We also demonstrate time-resolved measurements, which reveal coherent energy transfer between spin waves and lattice vibrations.
Physical Review B | 2017
Sanchar Sharma; Yaroslav M. Blanter; Gerrit E. W. Bauer
Brillouin light scattering is an established technique to study magnons, the elementary excitations of a magnet. Its efficiency can be enhanced by cavities that concentrate the light intensity. Here, we theoretically study inelastic scattering of photons by a magnetic sphere that supports optical whispering gallery modes in a plane normal to the magnetization. Magnons with low angular momenta scatter the light in the forward direction with a pronounced asymmetry in the Stokes and the anti-Stokes scattering strength, consistent with earlier studies. Magnons with large angular momenta constitute Damon-Eschbach modes which are shown to inelastically reflect light. The reflection spectrum contains either a Stokes or anti-Stokes peak, depending on the direction of the magnetization, a selection rule that can be explained by the chirality of the Damon-Eshbach magnons. The controllable energy transfer can be used to manage the thermodynamics of the magnet by light.
Physical Review B | 2017
Benedetta Flebus; Ka Shen; Takashi Kikkawa; Ken-ichi Uchida; Zhiyong Qiu; Eiji Saitoh; R. A. Duine; Gerrit E. W. Bauer
We theoretically study the effects of strong magnetoelastic coupling on the transport properties of magnetic insulators. We develop a Boltzmann transport theory for the mixed magnon-phonon modes (magnon polarons) and determine transport coefficients and the spin diffusion length. Magnon-polaron formation causes anomalous features in the magnetic field and temperature dependence of the spin Seebeck effect when the disorder scattering in the magnetic and elastic subsystems is sufficiently different. Experimental data by Kikkawa [Phys. Rev. Lett. 117, 207203 (2016)PRLTAO0031-900710.1103/PhysRevLett.117.207203] on yttrium iron garnet films can be explained by an acoustic quality that is much better than the magnetic quality of the material. We predict similar anomalous features in the spin and heat conductivity and nonlocal spin transport experiments.
Physical Review B | 2017
Hedyeh Keshtgar; Simon Streib; Akashdeep Kamra; Yaroslav M. Blanter; Gerrit E. W. Bauer
We address the theory of the coupled lattice and magnetization dynamics of freely suspended single-domain nanoparticles. Magnetic anisotropy generates low-frequency satellite peaks in the microwave absorption spectrum and a blueshift of the ferromagnetic resonance (FMR) frequency. The low-frequency resonances are very sharp with maxima exceeding that of the FMR, because their magnetic and mechanical precessions are locked, thereby suppressing the effective Gilbert damping. Magnetic nanoparticles can operate as nearly ideal motors that convert electromagnetic into mechanical energy. The Barnett damping term is essential for obtaining physically meaningful results.
Journal of Physics D | 2018
Ka Shen; Gerrit E. W. Bauer
We develop a theory of the spin wave dynamics excited by ultrafast focused laser pulses in a magnetic film. We take into account both volume and surface spin wave modes in the presence of applied, dipolar and magnetic anisotropy fields and include the dependence on laser spot exposure size and magnetic damping. We show that the acoustic waves generated by local heating by an ultrafast focused laser pulse are able to excite a wide spectrum of spin waves (on top of a dominant magnon-phonon contribution). Good agreement with recent experiments supports the validity of the model.
Physical Review Letters | 2018
Sanchar Sharma; Yaroslav M. Blanter; Gerrit E. W. Bauer
Physical Review Letters | 2018
Simon Streib; Hedyeh Keshtgar; Gerrit E. W. Bauer
Physical Review B | 2018
Babak Zare Rameshti; Gerrit E. W. Bauer
Physical Review B | 2018
Lei Liang; Juan Shan; Qihong Chen; Jianming Lu; Graeme R. Blake; Thomas Palstra; Gerrit E. W. Bauer; Bart J. van Wees; Jianting Ye