Spintronic terahertz emitters with integrated metallic terahertz cavities

Author:

Mičica Martin1,Wright Adrien1,Koleják Pierre23,Lezier Geoffrey2,Postava Kamil3,Hawecker Jacques4,De Vetter Anna1,Tignon Jerome1,Mangeney Juliette1ORCID,Jaffres Henri5,Lebrun Romain5,Tiercelin Nicolas2,Vanwolleghem Mathias2,Dhillon Sukhdeep1ORCID

Affiliation:

1. Laboratoire de Physique de l’Ecole Normale Supérieure, ENS, Université PSL, CNRS, Sorbonne Université, Université Paris Cité , F-75005 , Paris , France

2. Univ. Lille , CNRS, Centrale Lille, Univ. Polytechnique Hauts-de-France , UMR 8520-IEMN , F-59000 , Lille , France

3. IT4Innovations National Supercomputing Center & Faculty of Materials Science and Technology, VSB - Technical University of Ostrava , 17. listopadu 15 , 708 00 Ostrava , Czech Republic

4. Femtosecond Spectroscopy Unit , Okinawa Institute of Science and Technology Graduate University , Onna-son , Okinawa , 904-0495, Japan

5. Laboratoire Albert Fert, CNRS, Thales, Université Paris-Saclay , 1 Avenue Augustin Fresnel , 91767 , Palaiseau , France

Abstract

Abstract Spintronic terahertz emitters (STEs), based on optical excitation of nanometer thick ferromagnetic/heavy metal (FM/HM) heterojunctions, have become important sources for the generation of terahertz (THz) pulses. However, the efficiency of the optical-to-THz conversion remains limited. Although optical techniques have been developed to enhance the optical absorption, no investigations have studied the application of THz cavities. Here, to enhance the THz efficiency of STEs in a selected THz spectral range, FM/HM structures are realized on ultra-thin sapphire layers with metallic mirrors to create λ/4 THz resonant cavities. THz emission time domain spectroscopy of these STE/sapphire/mirror heterostructures, with sapphire thicknesses ranging from 110 µm to 25 µm, shows enhancement of the emitted THz field that fits the λ/4 cavity resonance with up to a doubling of the field in the spectrum, and in agreement with temporal simulations of the emitted THz pulse. By taking advantage of birefringent materials, we further show the potential of control of the polarization state of the emitted THz pulse. This work shows the potential of enhancing and engineering THz emission from STEs using THz cavities that can be controlled over a broad spectral range, which can be easily combined with optical cavities.

Funder

Agence Nationale de la Recherche

H2020 Future and Emerging Technologies

Ministerstvo Školství, Mládeže a Tělovýchovy

PEPR SPIN

Publisher

Walter de Gruyter GmbH

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