Fifth-order nonlinear optical response of excitonic states in an InAs quantum dot ensemble measured with 2D spectroscopy
arXiv:1210.8096 · doi:10.1103/PhysRevB.87.045313
Abstract
Exciton, trion and biexciton dephasing rates are measured within the inhomogeneous distribution of an InAs quantum dot (QD) ensemble using two-dimensional Fourier-transform spectroscopy. The dephasing rate of each excitonic state is similar for all QDs in the ensemble and the rates are independent of excitation density. An additional spectral feature -- too weak to be observed in the time-integrated four-wave mixing signal -- appears at high excitation density and is attributed to the biexcitonic nonlinear response.
References in corpus (1)
Cited by in corpus (15)
- Two-color spin noise spectroscopy: Using spin fluctuation correlations to reveal homogeneous linewidths within quantum dot ensembles
- Multi-Wave Coherent Control of a Solid State Single Emitter
- Dynamics of excitons in individual InAs quantum dots revealed in four-wave mixing spectroscopy
- Correlation and dephasing effects on the non-radiative coherence between bright excitons in an InAs QD ensemble measured with 2D spectroscopy
- Coherent coupling of individual quantum dots measured with phase-referenced two-dimensional spectroscopy: photon echo versus double quantum coherence
- Photon echo transients from an inhomogeneous ensemble of semiconductor quantum dots
- Fast phase cycling in non-collinear optical two-dimensional coherent spectroscopy
- Machine Learning Enabled Lineshape Analysis in Optical Two-Dimensional Coherent Spectroscopy
- Optical Two-dimensional Coherent Spectroscopy of Cold Atoms
- Dephasing of InAs quantum dot p-shell excitons using two-dimensional coherent spectroscopy
- Broadband Optical Two-Dimensional Coherent Spectroscopy of a Rubidium Atomic Vapor
- Destructive photon echo formation in six-wave mixing signals of a MoSe monolayer
- Cogwheel phase cycling in population-detected optical coherent multidimensional spectroscopy
- Homogeneous Linewidth Narrowing of the Charged Exciton via Nuclear Spin Screening in an InAs/GaAs Quantum Dot Ensemble
- Coherent Nonlinear Optical Response for High-Intensity Excitation