Future information technologies, such as ultrafast data recording, quantum computation or spintronics, call for ever faster spin control by light(1-16). Intense terahertz pulses can couple to spins on the intrinsic energy scale of magnetic excitations(5,11). Here, we explore a novel electric dipole-mediated mechanism of nonlinear terahertz-spin coupling that is much stronger than linear Zeeman coupling to the terahertz magnetic field(5,10). Using the prototypical antiferromagnet thulium orthoferrite (TmFeO3), we demonstrate that resonant terahertz pumping of electronic orbital transitions modifies the magnetic anisotropy for ordered Fe3+ spins and triggers large-amplitude coherent spin oscillations. This mechanism is inherently nonlinear, i...
Ultrafast non-thermal manipulation of magnetization by light relies on either indirect coupling of t...
It is found that single-cycle THz electromagnetic fields efficiently excite a GHz spin resonance mod...
Ultrafast spin dynamics in magnetic materials is generally associated with ultrafast heating of the ...
Future information technologies, such as ultrafast data recording, quantum computation or spintronic...
Ultrashort pulses of intense THz radiation have been shown to represent a powerful and versatile too...
Future information technology demands ever-faster, low-loss quantum control. Intense light fields ha...
Few cycle THz transients pump electronic transitions coupled to the spin system in thulium orthoferr...
Future information technology demands ever-faster, low-loss quantum control. Intense light fields ha...
Copyright © 2014 American Physical SocietyUsing the examples of laser-induced spin-reorientation pha...
Ultrafast charge and spin excitations in the elusive terahertz regime of the electromagnetic spectru...
A nearly single cycle intense terahertz (THz) pulse with peak electric and magnetic fields of 0.5 MV...
Future information technology demands ultimately fast, low-loss quantum control. Intense light field...
Terahertz magnetic fields with amplitudes of up to 0.4 Tesla drive magnon resonances in nickel oxide...
We report on the coherent control of terahertz (THz) spin waves in a canted antiferromagnet yttrium ...
Ultrafast non-thermal manipulation of magnetization by light relies on either indirect coupling of t...
It is found that single-cycle THz electromagnetic fields efficiently excite a GHz spin resonance mod...
Ultrafast spin dynamics in magnetic materials is generally associated with ultrafast heating of the ...
Future information technologies, such as ultrafast data recording, quantum computation or spintronic...
Ultrashort pulses of intense THz radiation have been shown to represent a powerful and versatile too...
Future information technology demands ever-faster, low-loss quantum control. Intense light fields ha...
Few cycle THz transients pump electronic transitions coupled to the spin system in thulium orthoferr...
Future information technology demands ever-faster, low-loss quantum control. Intense light fields ha...
Copyright © 2014 American Physical SocietyUsing the examples of laser-induced spin-reorientation pha...
Ultrafast charge and spin excitations in the elusive terahertz regime of the electromagnetic spectru...
A nearly single cycle intense terahertz (THz) pulse with peak electric and magnetic fields of 0.5 MV...
Future information technology demands ultimately fast, low-loss quantum control. Intense light field...
Terahertz magnetic fields with amplitudes of up to 0.4 Tesla drive magnon resonances in nickel oxide...
We report on the coherent control of terahertz (THz) spin waves in a canted antiferromagnet yttrium ...
Ultrafast non-thermal manipulation of magnetization by light relies on either indirect coupling of t...
It is found that single-cycle THz electromagnetic fields efficiently excite a GHz spin resonance mod...
Ultrafast spin dynamics in magnetic materials is generally associated with ultrafast heating of the ...