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Main Authors: Kutas, Mirco, Riexinger, Felix, Klier, Jens, Molter, Daniel, von Freymann, Georg
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2408.02531
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author Kutas, Mirco
Riexinger, Felix
Klier, Jens
Molter, Daniel
von Freymann, Georg
author_facet Kutas, Mirco
Riexinger, Felix
Klier, Jens
Molter, Daniel
von Freymann, Georg
contents Quantum imaging with undetected photons spatially transfers amplitude and phase information from one spectral region of physical interest to another spectral region that is easy to detect. The photon energy of the two spectral regions can, in principle, be separated by several orders of magnitude. However, quantum imaging with undetected photons has so far only been demonstrated in spectral regions of similar order of magnitude in frequency (and for which cameras are commercially available). Here, we demonstrate amplitude- and phase-sensitive imaging in the terahertz spectral region (1.5 THz center frequency) by detecting only visible photons (center wavelength 662.2 nm, 452.7 THz center frequency) more than two orders of magnitude apart. As a result, terahertz spectral information can be reliably detected with a standard CMOS camera without cooling, achieving a spatial resolution close to the wavelength. By taking advantage of quantum distillation in a nonlinear interferometer, the influence of ubiquitous thermal terahertz photons can be neglected. Our results are in good agreement with numerical simulations of the imaging process and demonstrate the huge potential of this method to address otherwise challenging spectral regions where cameras do not exist.
format Preprint
id arxiv_https___arxiv_org_abs_2408_02531
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Terahertz Quantum Imaging
Kutas, Mirco
Riexinger, Felix
Klier, Jens
Molter, Daniel
von Freymann, Georg
Quantum Physics
Optics
Quantum imaging with undetected photons spatially transfers amplitude and phase information from one spectral region of physical interest to another spectral region that is easy to detect. The photon energy of the two spectral regions can, in principle, be separated by several orders of magnitude. However, quantum imaging with undetected photons has so far only been demonstrated in spectral regions of similar order of magnitude in frequency (and for which cameras are commercially available). Here, we demonstrate amplitude- and phase-sensitive imaging in the terahertz spectral region (1.5 THz center frequency) by detecting only visible photons (center wavelength 662.2 nm, 452.7 THz center frequency) more than two orders of magnitude apart. As a result, terahertz spectral information can be reliably detected with a standard CMOS camera without cooling, achieving a spatial resolution close to the wavelength. By taking advantage of quantum distillation in a nonlinear interferometer, the influence of ubiquitous thermal terahertz photons can be neglected. Our results are in good agreement with numerical simulations of the imaging process and demonstrate the huge potential of this method to address otherwise challenging spectral regions where cameras do not exist.
title Terahertz Quantum Imaging
topic Quantum Physics
Optics
url https://arxiv.org/abs/2408.02531