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Updated: Mar 10, 2026

Resonance Fluorescence of an InGaAs Quantum Dot in a Planar Cavity Using Orthogonal Excitation and Detection
Published on: October 13, 2017
Enhancement of Femtosecond Photon Echo Signals From an Inhomogeneously Broadened InAs Quantum Dot Ensemble Using
Yuta Kochi1,2, Yutaro Kinoshita1,2, Masanari Watanabe1,2
1School of Fundamental Science and Technology Keio University Yokohama Kanagawa Japan.
None:
Photon echo (PE) techniques offer a promising approach to optical quantum memory, yet their implementation in conventional platforms, such as rare-earth-ion-doped crystals, is hindered by limited bandwidths. Semiconductor quantum dot (QD) ensembles, featuring THz-scale inhomogeneous broadening and sub-picosecond dynamics, provide an attractive alternative for ultrafast applications. However, achieving coherent control across such broad spectral ranges remains challenging due to detuning and spatial field inhomogeneities, which reduce PE efficiency. In this work, we demonstrate that chirped rephasing pulses satisfying adiabatic conditions enable robust adiabatic rapid passage (ARP) across an inhomogeneously broadened InAs QD ensemble. This approach achieves uniform population inversion and broadband rephasing, overcoming the limitations of transform-limited excitation. Experimentally, we observe a 3.2-fold enhancement of the PE signal in dense, self-assembled InAs QDs operating at telecom wavelengths. Numerical simulations based on a two-level model reproduce the experimentally observed ARP-induced enhancement, validating the underlying physical mechanism. These results establish ARP as an effective and scalable method for coherent control in THz-broadened QD ensembles, opening a pathway toward ultrafast and broadband optical quantum memory and communication in the telecom band.

