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Showing posts with label antiferromagnets. Show all posts
Showing posts with label antiferromagnets. Show all posts
Wednesday, September 19, 2018
Abstract-Narrow-band tunable terahertz detector in antiferromagnets via staggered-field and antidamping torques
O. Gomonay, T. Jungwirth, J. Sinova,
https://journals.aps.org/prb/accepted/0907eYa0Z1c1e85517b11ce5d1968ba981881a42e
We study dynamics of antiferromagnets induced by simultaneous application of dc spin current and ac charge current, motivated by the requirement of all-electrically controlled devices in THz gap (0.1-30 THz). We show that ac electric current, via N\'eel spin orbit torques, can lock the phase of a steady rotating N\'eel vector whose precession is controlled by a dc spin current. In the phase-locking regime the frequency of the incoming ac signal coincides with the frequency of autooscillations which for typical antiferromagnets fall into the THz range. The frequency of autooscillations is proportional to the precession-induced tilting of the magnetic sublattices related to the so-called dynamical magnetization. We show how the incoming ac signal can be detected and formulate the conditions of phase-locking. We also show that the rotating N\'eel vector can generate ac electrical current via inverse N\'eel spin-orbit torque. Hence, antiferromagnets driven by dc spin current can be used as tunable detectors and emitters of narrow-band signals operating in the THz range.
Sunday, April 8, 2018
Abstract-Using ultrashort terahertz pulses to directly probe spin dynamics in insulating antiferromagnets
Pamela Bowlan, S A Trugman, Dzmitry Yarotski, Antoinette J Taylor, Rohit P Prasankuma
http://iopscience.iop.org/article/10.1088/1361-6463/aab8da
Terahertz pulses are a direct and general probe of ultrafast spin dynamics in insulating antiferromagnets (AFM). This is shown by using optical-pump, THz-probe spectroscopy to directly track AFM spin dynamics in the hexagonal multiferroic HoMnO3 and the orthorhombic multiferroic TbMnO3. Our studies show that despite the different structural and spin orders in these materials, THz pulses can unambiguously resolve spin dynamics after optical photoexcitation. We believe that this approach is quite general and can be applied to a broad range of materials with different AFM spin alignments, providing a novel non-contact approach for probing AFM order with femtosecond temporal resolution.
Wednesday, April 27, 2016
Abstract-Terahertz antiferromagnetic spin Hall nano-oscillator
Ran Cheng, Di Xiao, and Arne Brataas
https://journals.aps.org/prl/accepted/dc075Yb7W7212d55637e32c0607d5319623ad88bf
We consider the current-induced dynamics of insulating antiferromagnets in a spin Hall geometry. Sufficiently large in-plane currents perpendicular to the N\'{e}el order trigger spontaneous oscillations at frequencies between the acoustic and the optical eigenmodes. The direction of the driving current determines the chirality of the excitation. When the current exceeds a threshold, the combined effect of current-induced torques and spin pumping introduces a dynamic feedback that sustains steady-state oscillations with amplitudes controllable via the applied current. The AC voltage output is calculated numerically as a function of the DC current input for different feedback strengths. Our findings open a route towards Terahertz antiferromagnetic spin-torque oscillators.
Wednesday, August 6, 2014
Abstract-Ultrafast Spin Precession and Transport Controlled and Probed with Terahertz Radiation
http://link.springer.com/chapter/10.1007/978-3-319-07743-7_100
We present examples of how terahertz (THz) electromagnetic transients can be used to control spin precession in antiferromagnets (through the THz Zeeman torque) and to probe spin transport in magnetic heterostructures (through the THz inverse spin Hall effect), on femtosecond time scales.
We present examples of how terahertz (THz) electromagnetic transients can be used to control spin precession in antiferromagnets (through the THz Zeeman torque) and to probe spin transport in magnetic heterostructures (through the THz inverse spin Hall effect), on femtosecond time scales.
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