Direkt zum Inhalt

Schlauderer, Stefan ; Lange, Christoph ; Baierl, Sebastian ; Ebnet, Thomas ; Schmid, C. P. ; Valovcin, D. C. ; Zvezdin, A. K. ; Kimel, A. V. ; Mikhaylovskiy, R. V. ; Huber, Rupert

Data archive of "Temporal and spectral fingerprints of ultrafast all-coherent spin switching"

Schlauderer, Stefan, Lange, Christoph, Baierl, Sebastian, Ebnet, Thomas, Schmid, C. P., Valovcin, D. C., Zvezdin, A. K., Kimel, A. V. , Mikhaylovskiy, R. V. und Huber, Rupert (2019) Data archive of "Temporal and spectral fingerprints of ultrafast all-coherent spin switching". [Datensatz]

Veröffentlichungsdatum dieses Volltextes: 25 Sep 2020 06:11
Datensatz
DOI zum Zitieren dieses Dokuments: 10.5283/epub.43819


Zusammenfassung

Future information technology demands ever-faster, low-loss quantum control. Intense light fields have facilitated milestones along this way, including the induction of novel states of matter(1-3), ballistic acceleration of electrons(4-7) and coherent flipping of the valley pseudospin(8). These dynamics leave unique 'fingerprints', such as characteristic bandgaps or high-order harmonic radiation. ...

Future information technology demands ever-faster, low-loss quantum control. Intense light fields have facilitated milestones along this way, including the induction of novel states of matter(1-3), ballistic acceleration of electrons(4-7) and coherent flipping of the valley pseudospin(8). These dynamics leave unique 'fingerprints', such as characteristic bandgaps or high-order harmonic radiation. The fastest and least dissipative way of switching the technologically most important quantum attribute-the spin-between two states separated by a potential barrier is to trigger an all-coherent precession. Experimental and theoretical studies with picosecond electric and magnetic fields have suggested this possibility(9-11), yet observing the actual spin dynamics has remained out of reach. Here we show that terahertz electromagnetic pulses allow coherent steering of spins over a potential barrier, and we report the corresponding temporal and spectral fingerprints. This goal is achieved by coupling spins in antiferromagnetic TmFeO3 (thulium orthoferrite) with the locally enhanced terahertz electric field of custom-tailored antennas. Within their duration of one picosecond, the intense terahertz pulses abruptly change the magnetic anisotropy and trigger a large-amplitude ballistic spin motion. A characteristic phase flip, an asymmetric splitting of the collective spin resonance and a long-lived offset of the Faraday signal are hallmarks of coherent spin switching into adjacent potential minima, in agreement with numerical simulations. The switchable states can be selected by an external magnetic bias. The low dissipation and the antenna's subwavelength spatial definition could facilitate scalable spin devices operating at terahertz rates.



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Details

DokumentenartDatensatz
Titel eines Journals oder einer ZeitschriftNature
Verlag:Nature
Ort der Veröffentlichung:LONDON
Band:569
Nummer des Zeitschriftenheftes oder des Kapitels:7756
Seitenbereich:S. 383-387
Datum2019
InstitutionenPhysik > Institut für Experimentelle und Angewandte Physik > Lehrstuhl Professor Huber > Arbeitsgruppe Rupert Huber
Identifikationsnummer
WertTyp
10.1038/s41586-019-1174-7DOI
Stichwörter / KeywordsDRIVEN; DYNAMICS;
Dewey-Dezimal-Klassifikation500 Naturwissenschaften und Mathematik > 530 Physik
StatusUnveröffentlicht
BegutachtetNie, das Dokument wird nicht wissenschaftlich begutachtet werden
An der Universität Regensburg entstandenZum Teil
Dokumenten-ID43819

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