Literature DB >> 35499884

Light-Induced Magnetization at the Nanoscale.

Jonas Wätzel1, Primož Rebernik Ribič2, Marcello Coreno2,3, Miltcho B Danailov2, Christian David4, Alexander Demidovich2, Michele Di Fraia2, Luca Giannessi2,5, Klavs Hansen6, Špela Krušič7, Michele Manfredda2, Michael Meyer8, Andrej Mihelič7, Najmeh Mirian2,9, Oksana Plekan2, Barbara Ressel10, Benedikt Rösner4, Alberto Simoncig2, Simone Spampinati2, Matija Stupar10, Matjaž Žitnik7, Marco Zangrando2,11, Carlo Callegari2, Jamal Berakdar1, Giovanni De Ninno2,10.   

Abstract

Triggering and switching magnetic moments is of key importance for applications ranging from spintronics to quantum information. A noninvasive ultrafast control at the nanoscale is, however, an open challenge. Here, we propose a novel laser-based scheme for generating atomic-scale charge current loops within femtoseconds. The associated orbital magnetic moments remain ferromagnetically aligned after the laser pulses have ceased and are localized within an area that is tunable via laser parameters and can be chosen to be well below the diffraction limit of the driving laser field. The scheme relies on tuning the phase, polarization, and intensities of two copropagating Gaussian and vortex laser pulses, allowing us to control the spatial extent, direction, and strength of the atomic-scale charge current loops induced in the irradiated sample upon photon absorption. In the experiment we used He atoms driven by an ultraviolet and infrared vortex-beam laser pulses to generate current-carrying Rydberg states and test for the generated magnetic moments via dichroic effects in photoemission. Ab initio quantum dynamic simulations and analysis confirm the proposed scenario and provide a quantitative estimate of the generated local moments.

Entities:  

Year:  2022        PMID: 35499884     DOI: 10.1103/PhysRevLett.128.157205

Source DB:  PubMed          Journal:  Phys Rev Lett        ISSN: 0031-9007            Impact factor:   9.161


  1 in total

1.  Spatio-temporal superconducting dynamics driven by THz fields from topological spintronic terahertz emitters.

Authors:  Björn Niedzielski; Dominik Schulz; Jamal Berakdar
Journal:  Sci Rep       Date:  2022-09-16       Impact factor: 4.996

  1 in total

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