Abstract
We present time-resolved Kerr rotation measurements, showing spin lifetimes of over 100 ns at room temperature in monolayer MoSe2. These long lifetimes are accompanied by an intriguing temperature-dependence of the Kerr amplitude, which increases with temperature up to 50 K and then abruptly switches sign. Using ab initio simulations, we explain the latter behavior in terms of the intrinsic electron-phonon coupling and the activation of transitions to secondary valleys. The phonon-assisted scattering of the photoexcited electron-hole pairs prepares a valley spin polarization within the first few ps after laser excitation. The sign of the total valley magnetization, and thus the Kerr amplitude, switches as a function of temperature, as conduction and valence band states exhibit different phonon-mediated intervalley scattering rates. However, the electron-phonon scattering on the ps time scale does not provide an explanation for the long spin lifetimes. Hence, we deduce that the initial spin polarization must be transferred into spin states, which are protected from the intrinsic electron-phonon coupling, and are most likely resident charge carriers, which are not part of the itinerant valence or conduction band states.
Original language | English |
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Pages (from-to) | 4083-4090 |
Number of pages | 8 |
Journal | Nano Letters |
Volume | 19 |
Issue number | 6 |
DOIs | |
Publication status | Published - 12 Jun 2019 |
Externally published | Yes |
Funding
This project has received funding from the European Union’s Horizon 2020 research and innovation programme under grant agreement No 785219. It was also supported by the Helmholtz Nanoelectronic Facility (HNF)57 at the Forschungszentrum Jülich. P.M.M.C.M. and M.J.V. acknowledge funding by the Belgian FNRS (PDR G.A. T.1077.15-1/7) and the Commu-nauté Francaisȩ de Belgique (ARC AIMED G.A. 15/19-09). Z.Z. acknowledges financial support by the Ramon y Cajal program (RYC-2016-19344), the CERCA programme of the Generalitat de Catalunya (grant 2017SGR1506), the Severo Ochoa programme (MINECO, SEV-2017-0706), and the EC H2020-INFRAEDI-2018-2020 MaX “Materials Design at the Exascale” CoE (grant No. 824143). Computational resources have been provided by the Consortium des Equipements de Calcul Intensif (CECI), funded by FRS-FNRS G.A. 2.5020.11; the Zenobe Tier-1 supercomputer is funded by the Walloon Region under G.A. 1117545 and by a PRACE-3IP DECI grant 2DSpin on Beskow (G.A. 653838 of H2020).
Keywords
- electron-phonon coupling
- monolayer MoSe
- spin lifetime
- time-resolved Kerr rotation
- Transition metal dichalcogenides