All-optical spin switching: A new frontier in femtomagnetism - A short review and a simple theory

被引:32
作者
Zhang, G. P. [1 ]
Latta, T. [1 ]
Babyak, Z. [1 ]
Bai, Y. H. [2 ]
George, Thomas F. [3 ,4 ,5 ]
机构
[1] Indiana State Univ, Dept Phys, Terre Haute, IN 47809 USA
[2] Indiana State Univ, Off Informat Technol, Terre Haute, IN 47809 USA
[3] Univ Missouri, Off Chancellor, St Louis, MO 63121 USA
[4] Univ Missouri, Ctr Neurosci, Dept Chem & Biochem, St Louis, MO 63121 USA
[5] Univ Missouri, Dept Phys & Astron, St Louis, MO 63121 USA
来源
MODERN PHYSICS LETTERS B | 2016年 / 30卷 / 21期
关键词
All-optical; spin switching; ultrafast; FERROMAGNETIC THIN-FILMS; MAGNETIZATION DYNAMICS; LATTICE-RELAXATION; ULTRAFAST; TIME; MAGNETOOPTICS; EXCITATION; MAGNETISM; REVERSAL; METALS;
D O I
10.1142/S0217984916300052
中图分类号
O59 [应用物理学];
学科分类号
摘要
Using an ultrafast laser pulse to manipulate the spin degree of freedom has broad technological appeal. It allows one to control the spin dynamics on a femtosecond time scale. The discipline, commonly called femtomagnetism, started with the pioneering experiment by Beaurepaire and coworkers in 1996, who showed subpicosecond demagnetization occurs in magnetic Ni thin films. This finding has motivated extensive research worldwide. All-optical helicity-dependent spin switching (AO-HDS) represents a new frontier in femtomagnetism, where a single ultrafast laser pulse can permanently switch spin without any assistance from a magnetic field. This review summarizes some of the crucial aspects of this new discipline: key experimental findings, leading mechanisms, controversial issues, and possible future directions. The emphasis is on our latest investigation. We first develop the all-optical spin switching (AOS) rule that determines how the switchability depends on the light helicity. This rule allows one to understand microscopically how the spin is reversed and why the circularly polarized light appears more powerful than the linearly polarized light. Then we invoke our latest spin-orbit coupled harmonic oscillator model to simulate single spin reversal. We consider both continuous wave (cw) excitation and pulsed laser excitation. The results are in a good agreement with the experimental result (a MatLab code is available upon request from the author). We then extend the code to include the exchange interaction among different spin sites. We show where the "inverse-Faraday field" comes from and how the laser affects the spin reversal nonlinearly. Our hope is that this review will motivate new experimental and theoretical investigations and discussions.
引用
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页数:33
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