scholarly journals Using ultrashort terahertz pulses to directly probe spin dynamics in insulating antiferromagnets

2018 ◽  
Vol 51 (19) ◽  
pp. 194003 ◽  
Author(s):  
P Bowlan ◽  
S A Trugman ◽  
D A Yarotski ◽  
A J Taylor ◽  
R P Prasankumar
2016 ◽  
Vol 94 (18) ◽  
Author(s):  
P. Bowlan ◽  
S. A. Trugman ◽  
X. Wang ◽  
Y. M. Dai ◽  
S.-W. Cheong ◽  
...  

2020 ◽  
Vol 11 (21) ◽  
pp. 5511-5525
Author(s):  
Megan S. Lazorski ◽  
Igor Schapiro ◽  
Ross S. Gaddie ◽  
Ammon P. Lehnig ◽  
Mihail Atanasov ◽  
...  

Quantum chemical calculations and laser flash spectroscopy probe spin-dynamics of the photoinduced electron transfer mechanism in two donor–acceptor bisphenanthrolinecopper(i) species, marking the influence of spin on solar energy conversion schemes.


Author(s):  
Olle Eriksson ◽  
Anders Bergman ◽  
Lars Bergqvist ◽  
Johan Hellsvik

In the previous chapters we described the basic principles of density functional theory, gave examples of how accurate it is to describe static magnetic properties in general, and derived from this basis the master equation for atomistic spin-dynamics; the SLL (or SLLG) equation. However, one term was not described in these chapters, namely the damping parameter. This parameter is a crucial one in the SLL (or SLLG) equation, since it allows for energy and angular momentum to dissipate from the simulation cell. The damping parameter can be evaluated from density functional theory, and the Kohn-Sham equation, and it is possible to determine its value experimentally. This chapter covers in detail the theoretical aspects of how to calculate theoretically the damping parameter. Chapter 8 is focused, among other things, on the experimental detection of the damping, using ferromagnetic resonance.


Author(s):  
M. M. Glazov

In this chapter, some prospects in the field of electron and nuclear spin dynamics are outlined. Particular emphasis is put ona situation where the hyperfine interaction is so strong that it leads to a qualitative rearrangement of the energy spectrum resulting in the coherent excitation transfer between the electron and nucleus. The strong coupling between the spin of the charge carrier and of the nucleus is realized, for example in the case of deep impurity centers in semiconductors or in isotopically purified systems. We also discuss the effect of the nuclear spin polaron, that is ordered state, formation at low enough temperatures of nuclear spins, where the orientation of the carrier spin results in alignment of the spins of nucleus interacting with the electron or hole.


Author(s):  
M. M. Glazov

The discussion of the electron spin decoherence and relaxation phenomena via the hyperfine interaction with host lattice spins is presented here. The spin relaxation processes processes limit the conservation time of spin states as well as the response time of the spin system to external perturbations. The central spin model, where the spin of charge carrier interacts with the bath of nuclear spins, is formulated. We also present different methods to calculate the spin dynamics within this model. Simple but physically transparent semiclassical treatment where the nuclear spins are considered as largely static classical magnetic moments is followed by more advanced quantum mechanical approach where the feedback of electron spin dynamics on the nuclei is taken into account. The chapter concludes with an overview of experimental data and its comparison with model calculations.


Author(s):  
F. S. Dzheparov ◽  
A. D. Gulko ◽  
D. V. Lvov
Keyword(s):  

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