TY - JOUR
T1 - Collective excitation of spatio-spectrally distinct quantum dots enabled by chirped pulses
AU - Kappe, Florian
AU - Karli, Yusuf
AU - Bracht, T. K.
AU - Covre da Silva, Saimon
AU - Seidelmann, T.
AU - Axt, V. M.
AU - Rastelli, Armando
AU - Weihs, Gregor
AU - Reiter, D. E.
AU - Remesh, Vikas
PY - 2023
Y1 - 2023
N2 - Nanoscale bright sources that produce high-purity single photons and high-fidelity entangled photon pairs are the building blocks to realize high security quantum communication devices. To achieve high communication rates, it is desirable to have an ensemble of quantum emitters that can be collectively excited, despite their spectral variability. In case of semiconductor quantum dots, Rabi rotations are the most popular method for resonant excitation. However, these cannot assure a universal, highly efficient excited state preparation, due to the sensitivity to excitation parameters.
In contrast, adiabatic rapid passage (ARP), relying on chirped optical pulses, is immune to quantum dot spectral inhomogeneity. Here, we show that the robustness of ARP holds true for the simultaneous excitation of the biexciton states in multiple, spatially separated and spectrally different quantum dots. For positive chirps, we also find a regime where the influence of phonons
relax the sensitivity to spectral detunings and lower the needed excitation power. Being able to generate high-purity photons from spatially multiplexed quantum dot sources using the biexciton to ground state cascade is a big step towards the implementation of high photon rate, entanglement-based quantum key distribution protocols.
AB - Nanoscale bright sources that produce high-purity single photons and high-fidelity entangled photon pairs are the building blocks to realize high security quantum communication devices. To achieve high communication rates, it is desirable to have an ensemble of quantum emitters that can be collectively excited, despite their spectral variability. In case of semiconductor quantum dots, Rabi rotations are the most popular method for resonant excitation. However, these cannot assure a universal, highly efficient excited state preparation, due to the sensitivity to excitation parameters.
In contrast, adiabatic rapid passage (ARP), relying on chirped optical pulses, is immune to quantum dot spectral inhomogeneity. Here, we show that the robustness of ARP holds true for the simultaneous excitation of the biexciton states in multiple, spatially separated and spectrally different quantum dots. For positive chirps, we also find a regime where the influence of phonons
relax the sensitivity to spectral detunings and lower the needed excitation power. Being able to generate high-purity photons from spatially multiplexed quantum dot sources using the biexciton to ground state cascade is a big step towards the implementation of high photon rate, entanglement-based quantum key distribution protocols.
UR - https://www.scopus.com/pages/publications/85161649733
U2 - 10.1088/2633-4356/acd7c1
DO - 10.1088/2633-4356/acd7c1
M3 - Article
SN - 2633-4356
VL - 3
SP - 025006
JO - Materials for Quantum Technology
JF - Materials for Quantum Technology
IS - 2
M1 - 025006
ER -