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research article

Electron-Photon Quantum State Heralding Using Photonic Integrated Circuits

Huang, Guanhao  
•
Engelsen, Nils J.
•
Kfir, Ofer
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June 26, 2023
Prx Quantum

Recently, integrated photonic circuits have brought new capabilities to electron microscopy and been used to demonstrate efficient electron phase modulation and electron-photon correlations. Here, we quanti-tatively analyze the feasibility of high-fidelity and high-purity quantum state heralding using a free electron and a photonic integrated circuit with parametric coupling, and propose schemes to shape useful electron and photonic states in different application scenarios. Adopting a dissipative quantum electrodynamics treatment, we formulate a framework for the coupling of free electrons to waveguide spatial-temporal modes. To avoid multimode-coupling-induced state decoherence, we show that with proper waveguide design, the interaction can be reduced to a single-mode coupling to a quasi-TM00 mode. In the single-mode coupling limit, we go beyond the conventional state ladder treatment, and show that the electron-photon energy correlations within the ladder subspace can still lead to a fundamental purity and fidelity limit on complex optical and electron state preparations through heralding schemes. We propose applications that use this underlying correlation to their advantage, but also show that the imposed limitations for gen-eral applications can be overcome by using photonic integrated circuits with an experimentally feasible interaction length, showing its promise as a platform for free-electron quantum optics.

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Type
research article
DOI
10.1103/PRXQuantum.4.020351
Web of Science ID

WOS:001048526800001

Author(s)
Huang, Guanhao  
Engelsen, Nils J.
Kfir, Ofer
Ropers, Claus
Kippenberg, Tobias J.  
Date Issued

2023-06-26

Publisher

AMER PHYSICAL SOC

Published in
Prx Quantum
Volume

4

Issue

2

Article Number

020351

Subjects

Quantum Science & Technology

•

Physics, Applied

•

Physics, Multidisciplinary

•

Physics

•

frequency comb generation

•

optical-excitations

•

phase modulation

•

microscopy

•

field

•

wave

•

acceleration

•

quantization

•

diffraction

•

resolution

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LPQM  
Available on Infoscience
August 28, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/200209
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