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Photon drag currents and terahertz generation in α-Sn/Ge quantum wells

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journal contribution
posted on 2022-10-19, 08:11 authored by Binglei Zhang, Yi Luo, Yang Liu, Valerii N. Trukhin, Ilia A. Mustafin, Prokhor A. Alekseev, Bogdan R. Borodin, Ilya A. Eliseev, Fatemah H. Alkallas, Amira Ben-Gouider-Trabelsi, Anna KusmartsevaAnna Kusmartseva, Fedor V. Kusmartsev
We have fabricated α-Sn/Ge quantum well heterostructures by sandwiching nano-films of α-Sn between Ge nanolayers. The samples were grown via e-beam deposition and characterized by Raman spectroscopy, atomic force microscopy, temperature dependence of electrical resistivity and THz time-resolved spectroscopy. We have established the presence of α-Sn phase in the polycrystalline layers together with a high electron mobility μ = 2500 ± 100 cm2 V−1 s−1. Here, the temperature behavior of the resistivity in a magnetic field is distinct from the semiconducting films and three-dimensional Dirac semimetals, which is consistent with the presence of linear two-dimensional electronic dispersion arising from the mutually inverted band structure at the α-Sn/Ge interface. As a result, the α-Sn/Ge interfaces of the quantum wells have topologically non-trivial electronic states. From THz time-resolved spectroscopy, we have discovered unusual photocurrent and THz radiation generation. The mechanisms for this process are significantly different from ambipolar diffusion currents that are responsible for THz generation in semiconducting thin films, e.g., Ge. Moreover, the THz generation in α-Sn/Ge quantum wells is almost an order of magnitude greater than that found in Ge. The substantial strength of the THz radiation emission and its polarization dependence may be explained by the photon drag current. The large amplitude of this current is a clear signature of the formation of conducting channels with high electron mobility, which are topologically protected.

Funding

Princess Nourah bint Abdulrahman University Researchers Supporting Project number (PNURSP2022R223)

Royal Society, grant numbers IEC/R2/202314 and IEC/R2/202164

985 FSU-2021-030/8474000371

EU H2020 RISE project TERASSE (H2020-823878)

History

School

  • Science

Department

  • Physics

Published in

Nanomaterials

Volume

12

Issue

17

Publisher

MDPI

Version

  • VoR (Version of Record)

Rights holder

© The Authors

Publisher statement

This article is an Open Access article published by MDPI and distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https:// creativecommons.org/licenses/by/4.0/).

Acceptance date

2022-08-13

Publication date

2022-08-23

Copyright date

2022

eISSN

2079-4991

Language

  • en

Depositor

Dr Anna Kusmartseva. Deposit date: 17 October 2022

Article number

2892

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