dc.contributor.author
Vogel, Tim
dc.contributor.author
Omar, Alan
dc.contributor.author
Mansourzadeh, Samira
dc.contributor.author
Wulf, Frank
dc.contributor.author
Martín Sabanés, Natalia
dc.contributor.author
Müller, Melanie
dc.contributor.author
Seifert, Tom S.
dc.contributor.author
Weigel, Alexander
dc.contributor.author
Jakob, Gerhard
dc.contributor.author
Kampfrath, Tobias
dc.date.accessioned
2022-08-11T11:06:34Z
dc.date.available
2022-08-11T11:06:34Z
dc.identifier.uri
https://refubium.fu-berlin.de/handle/fub188/35859
dc.identifier.uri
http://dx.doi.org/10.17169/refubium-35574
dc.description.abstract
Metallic spintronic terahertz (THz) emitters have become well-established for offering ultra-broadband, gapless THz emission in a variety of excitation regimes, in combination with reliable fabrication and excellent scalability. However, so far, their potential for high-average-power excitation to reach strong THz fields at high repetition rates has not been thoroughly investigated. In this article, we explore the power scaling behavior of tri-layer spintronic emitters using an Yb-fiber excitation source, delivering an average power of 18.5 W (7 W incident on the emitter after chopping) at 400 kHz repetition rate, temporally compressed to a pulse duration of 27 fs. We confirm that a reflection geometry with back-side cooling is ideally suited for these emitters in the high-average-power excitation regime. In order to understand limiting mechanisms, we disentangle the effects on THz power generation by average power and pulse energy by varying the repetition rate of the laser. Our results show that the conversion efficiency is predominantly determined by the incident fluence in this high-average-power, high-repetition-rate excitation regime if the emitters are efficiently cooled. Using these findings, we optimize the conversion efficiency and reach highest excitation powers in the back-cooled reflection geometry. Our findings provide guidelines for scaling the power of THz radiation emitted by spintronic emitters to the milliwatt-level by using state-of-the-art femtosecond sources with multi-hundred-Watt average power to reach ultra-broadband, strong-field THz sources with high repetition rate.
en
dc.format.extent
18 Seiten
dc.rights.uri
https://creativecommons.org/licenses/by/4.0/
dc.subject
THz spintronic emitters
en
dc.subject
average power scaling
en
dc.subject
optimization
en
dc.subject.ddc
500 Naturwissenschaften und Mathematik::530 Physik::530 Physik
dc.title
Average power scaling of THz spintronic emitters efficiently cooled in reflection geometry
dc.type
Wissenschaftlicher Artikel
dcterms.bibliographicCitation.doi
10.1364/OE.453539
dcterms.bibliographicCitation.journaltitle
Optics Express
dcterms.bibliographicCitation.number
12
dcterms.bibliographicCitation.pagestart
20451
dcterms.bibliographicCitation.pageend
20468
dcterms.bibliographicCitation.volume
30
dcterms.bibliographicCitation.url
https://doi.org/10.1364/OE.453539
refubium.affiliation
Physik
refubium.resourceType.isindependentpub
no
dcterms.accessRights.openaire
open access
dcterms.isPartOf.eissn
1094-4087
refubium.resourceType.provider
WoS-Alert