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 condu...
Semiconductor transition metal dichalcogenides (TMDs) have equivalent dynamics for their two spin/va...
Nonequilibrium dynamics of strongly correlated systems constitutes a fascinating problem of condense...
Transition-metal dichalcogenides are unique semiconductors because of their exclusive coupling betwe...
We present time-resolved Kerr rotation measurements, showing spin lifetimes of over 100 ns at room t...
We present time-resolved Kerr rotation measurements, showing spin lifetimes of over 100 ns at room t...
Transition metal dichalcogenide monolayers are highly interesting for potential valleytronic applica...
Semiconductor transition metal dichalcogenides (TMDs) have equivalent dynamics for their two spin/va...
The excited state of a particularly selected spin- and valley-polarized electron is gathering growin...
Transition metal dichalcogenides have been the primary materials of interest in the field of valleyt...
Inversion-symmetric materials are forbidden to show an overall spin texture in their band structure ...
Using time-resolved Kerr rotation, we measure the spin-valley dynamics of resident electrons and hol...
International audienceUsing time-resolved Kerr rotation, we measure the spin-valley dynamics of resi...
We report on nanosecond-long, gate-dependent valley lifetimes of free charge carriers in monolayer W...
Monolayer transition metal dichalcogenides (TMDCs) offer a tantalizing platform for control of both ...
We report on the exciton and trion density dynamics in a single layer of MoSe2, resonantly excited a...
Semiconductor transition metal dichalcogenides (TMDs) have equivalent dynamics for their two spin/va...
Nonequilibrium dynamics of strongly correlated systems constitutes a fascinating problem of condense...
Transition-metal dichalcogenides are unique semiconductors because of their exclusive coupling betwe...
We present time-resolved Kerr rotation measurements, showing spin lifetimes of over 100 ns at room t...
We present time-resolved Kerr rotation measurements, showing spin lifetimes of over 100 ns at room t...
Transition metal dichalcogenide monolayers are highly interesting for potential valleytronic applica...
Semiconductor transition metal dichalcogenides (TMDs) have equivalent dynamics for their two spin/va...
The excited state of a particularly selected spin- and valley-polarized electron is gathering growin...
Transition metal dichalcogenides have been the primary materials of interest in the field of valleyt...
Inversion-symmetric materials are forbidden to show an overall spin texture in their band structure ...
Using time-resolved Kerr rotation, we measure the spin-valley dynamics of resident electrons and hol...
International audienceUsing time-resolved Kerr rotation, we measure the spin-valley dynamics of resi...
We report on nanosecond-long, gate-dependent valley lifetimes of free charge carriers in monolayer W...
Monolayer transition metal dichalcogenides (TMDCs) offer a tantalizing platform for control of both ...
We report on the exciton and trion density dynamics in a single layer of MoSe2, resonantly excited a...
Semiconductor transition metal dichalcogenides (TMDs) have equivalent dynamics for their two spin/va...
Nonequilibrium dynamics of strongly correlated systems constitutes a fascinating problem of condense...
Transition-metal dichalcogenides are unique semiconductors because of their exclusive coupling betwe...