Data Entry: Please note that the research database will be replaced by UNIverse by the end of October 2023. Please enter your data into the system https://universe-intern.unibas.ch. Thanks

Login for users with Unibas email account...

Login for registered users without Unibas email account...

 
Long decay length of magnon-polarons in BiFeO3/La0.67Sr0.33MnO3 heterostructures
JournalArticle (Originalarbeit in einer wissenschaftlichen Zeitschrift)
 
ID 4636566
Author(s) Zhang, Jianyu; Chen, Mingfeng; Chen, Jilei; Yamamoto, Kei; Wang, Hanchen; Hamdi, Mohammad; Sun, Yuanwei; Wagner, Kai; He, Wenqing; Zhang, Yu; Ma, Ji; Gao, Peng; Han, Xiufeng; Yu, Dapeng; Maletinsky, Patrick; Ansermet, Jean-Philippe; Maekawa, Sadamichi; Grundler, Dirk; Nan, Ce-Wen; Yu, Haiming
Author(s) at UniBasel Maletinsky, Patrick
Year 2021
Title Long decay length of magnon-polarons in BiFeO3/La0.67Sr0.33MnO3 heterostructures
Journal Nature Communications
Volume 12
Number 1
Pages / Article-Number ARTN 7258
Abstract Long-distance magnon transport is highly desired for magnonics. Here, the authors demonstrate a millimetre-long magnon decay length in multiferroic heterostructures, which is attributed to magnon-polarons induced by the magnetoelastic coupling. Magnons can transfer information in metals and insulators without Joule heating, and therefore are promising for low-power computation. The on-chip magnonics however suffers from high losses due to limited magnon decay length. In metallic thin films, it is typically on the tens of micrometre length scale. Here, we demonstrate an ultra-long magnon decay length of up to one millimetre in multiferroic/ferromagnetic BiFeO3(BFO)/La0.67Sr0.33MnO3(LSMO) heterostructures at room temperature. This decay length is attributed to a magnon-phonon hybridization and is more than two orders of magnitude longer than that of bare metallic LSMO. The long-distance modes have high group velocities of 2.5 km s(-1) as detected by time-resolved Brillouin light scattering. Numerical simulations suggest that magnetoelastic coupling via the BFO/LSMO interface hybridizes phonons in BFO with magnons in LSMO to form magnon-polarons. Our results provide a solution to the long-standing issue on magnon decay lengths in metallic magnets and advance the bourgeoning field of hybrid magnonics.
Publisher Nature Publishing Group
ISSN/ISBN 2041-1723
edoc-URL https://edoc.unibas.ch/86293/
Full Text on edoc Available
Digital Object Identifier DOI 10.1038/s41467-021-27405-2
PubMed ID http://www.ncbi.nlm.nih.gov/pubmed/34907202
ISI-Number 000730391400004
Document type (ISI) Article
 
   

MCSS v5.8 PRO. 0.323 sec, queries - 0.000 sec ©Universität Basel  |  Impressum   |    
12/05/2024