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Title: Non-Gaussian and Gottesman–Kitaev–Preskill state preparation by photon catalysis
Abstract

Continuous-variable quantum-computing is the most scalable implementation of QC to date but requires non-Gaussian resources to allow exponential speedup and quantum correction, using error encoding such as Gottesman–Kitaev–Preskill (GKP) states. However, GKP state generation is still an experimental challenge. We show theoretically that photon catalysis, the interference of coherent states with single-photon states followed by photon-number-resolved detection, is a powerful enabler for non-Gaussian quantum state engineering such as exactly displaced single-photon states andM-symmetric superpositions of squeezed vacuum (SSV), including squeezed cat states (M= 2). By including photon-counting based state breeding, we demonstrate the potential to enlarge SSV states and produce GKP states.

 
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Award ID(s):
1708023
NSF-PAR ID:
10303261
Author(s) / Creator(s):
; ;
Publisher / Repository:
IOP Publishing
Date Published:
Journal Name:
New Journal of Physics
Volume:
21
Issue:
11
ISSN:
1367-2630
Page Range / eLocation ID:
Article No. 113034
Format(s):
Medium: X
Sponsoring Org:
National Science Foundation
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