Optical vortex driven charge current loop and optomagnetism in fullerenes
arXiv:1601.00423 · doi:10.1016/j.carbon.2015.12.028
Abstract
Endohedral molecular magnets, e.g. as realized in fullerenes containing , are promising candidates for molecular electronics and quantum information processing. For their functionalization an ultrafast local magnetization control is essential. Using full ab-initio quantum chemistry calculations we predict the emergence of charge current loops in fullerenes with an associated orbital magnetic moment upon irradiation with weak light vortex pulses that transfer orbital angular momentum. The generated current is controllable by the frequency, the vortex topological charge, and the intensity of the light. Numerical and analytical results show that an ultraviolet vortex femtosecond pulse with an intensity W/cm generates non-invasively nA unidirectional surface current with an associated magnetic field of hundreds T at the center of the fullerene.
10 pages, 3 figures
References in corpus (4)
Cited by in corpus (12)
- Tunable orbital angular momentum in high-harmonic generation
- Formulation of the twisted-light--matter interaction at the phase singularity: beams with strong magnetic fields
- Optical vortices discern attosecond time delay in electron emission from magnetic sublevels
- Rotating edge-field driven processing of chiral spin textures in racetrack devices
- Electrons in intense laser fields with local phase, polarization, and skyrmionic textures
- Magneto-Electric Response of Quantum Structures Driven by Optical Vector Beams
- Femtosecond dynamics of correlated many-body states in C fullerenes
- All-optical non-linear chiral ultrafast magnetization dynamics driven by circularly polarized magnetic fields
- Tunable High Harmonic Pulses from Nanorings Swirled by Optical Vortices
- Orbital angular momentum beam generation using a free-electron laser oscillator
- Spatio-temporal delay in photoionization by polarization structured laser fields
- Optical Properties of Graphene in Magnetic and Electric fields