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Efficient metallic spintronic emitters of ultrabroadband terahertz radiation

Authors :
Seifert, T.
Jaiswal, S.
Martens, U.
Hannegan, J.
Braun, L.
Maldonado, P.
Freimuth, F.
Kronenberg, A.
Henrizi, J.
Radu, I.
Beaurepaire, E.
Mokrousov, Y.
Oppeneer, P. M.
Jourdan, M.
Jakob, G.
Turchinovich, D.
Hayden, L. M.
Wolf, M.
Münzenberg, M.
Kläui, M.
Kampfrath, T.
Source :
Nature Photonics 10, 483-488 (2016)
Publication Year :
2015

Abstract

Terahertz electromagnetic radiation is extremely useful for numerous applications such as imaging and spectroscopy. Therefore, it is highly desirable to have an efficient table-top emitter covering the 1-to-30-THz window whilst being driven by a low-cost, low-power femtosecond laser oscillator. So far, all solid-state emitters solely exploit physics related to the electron charge and deliver emission spectra with substantial gaps. Here, we take advantage of the electron spin to realize a conceptually new terahertz source which relies on tailored fundamental spintronic and photonic phenomena in magnetic metal multilayers: ultrafast photo-induced spin currents, the inverse spin-Hall effect and a broadband Fabry-P\'erot resonance. Guided by an analytical model, such spintronic route offers unique possibilities for systematic optimization. We find that a 5.8-nm-thick W/CoFeB/Pt trilayer generates ultrashort pulses fully covering the 1-to-30-THz range. Our novel source outperforms laser-oscillator-driven emitters such as ZnTe(110) crystals in terms of bandwidth, terahertz-field amplitude, flexibility, scalability and cost.<br />Comment: 18 pages, 10 figures

Details

Database :
arXiv
Journal :
Nature Photonics 10, 483-488 (2016)
Publication Type :
Report
Accession number :
edsarx.1510.03729
Document Type :
Working Paper
Full Text :
https://doi.org/10.1038/nphoton.2016.91