Motion of 2D exciton in momentum space leads to pseudospin distribution narrowing on the Bloch Sphere
arXiv:2404.15120 · doi:10.1021/acs.nanolett.3c04808
Abstract
Motional narrowing implies narrowing induced by motion, for example, in nuclear resonance, the thermally induced random motion of the nuclei in an inhomogeneous environment leads to counter-intuitive narrowing of the resonance line. Similarly, the excitons in monolayer semiconductors experience magnetic inhomogeneity: the electron-hole spin-exchange interaction manifests as an in-plane pseudo-magnetic field with a periodically varying orientation inside the exciton band. The excitons undergo random momentum scattering and pseudospin precession repeatedly in this inhomogeneous magnetic environment - typically resulting in fast exciton depolarization. On the contrary, we show that such magnetic inhomogeneity averages out at high scattering rate due to motional narrowing. Physically, a faster exciton scattering leads to a narrower pseudospin distribution on the Bloch sphere, implying a nontrivial improvement in exciton polarization. The in-plane nature of the pseudo-magnetic field enforces a contrasting scattering dependence between the circularly and linearly polarized excitons - providing a spectroscopic way to gauge the sample quality.
Accepted in Nano Letters
References in corpus (9)
- Valley polarization in MoS2 monolayers by optical pumping
- Observation of giant bandgap renormalization and excitonic effects in a monolayer transition metal dichalcogenide semiconductor
- Ultrafast Manipulation of Valley Pseudospin
- Superior valley polarization and coherence of 2s excitons in monolayer WSe2
- Fundamental exciton linewidth broadening in monolayer transition metal dichalcogenides
- Enhancement of Exciton Valley Polarization in Monolayer MoS2 Induced by Scattering
- Observation of ~100% valley-coherent excitons in monolayer MoS2 through giant enhancement of valley coherence time
- Harmonic to anharmonic tuning of moiré potential leading to unconventional Stark effect and giant dipolar repulsion in WS/WSe heterobilayer
- Polarized and narrow excitonic emission from graphene-capped monolayer WS through resonant phonon relaxation