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  4. Imaging inspired characterization of single photons carrying orbital angular momentum
 
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Imaging inspired characterization of single photons carrying orbital angular momentum

Source
Avs Quantum Science
Date Issued
2022-03-01
Author(s)
Kumar, Vimlesh
Sharma, Varun
Singh, Sandeep
Kumar, S. Chaitanya
Forbes, Andrew
Ebrahim-Zadeh, M.
Samanta, G. K.
DOI
10.1116/5.0078870
Volume
4
Issue
1
Abstract
We report on an imaging-inspired measurement of orbital angular momentum (OAM) using only a simple tilted lens and an intensified charged coupled device camera, allowing us to monitor the propagation of OAM structured photons over distance, which is crucial for free-space quantum communication networks. We demonstrate the measurement of OAM orders as high as ls = 14 in a heralded single-photon source and show, for the first time, the imaged self-interference of photons carrying OAM in a modified Mach-Zehnder interferometer. The described methods reveal both the charge and order of a photon's OAM and provide a proof of concept for the interference of a single OAM photon with itself. Using these tools, we are able to study the propagation characteristics of OAM photons over a distance, which is important for estimating transport in free-space quantum links. By translating these classical tools into the quantum domain, we offer a robust and direct approach for the complete characterization of a twisted single-photon source, an important building block of a quantum network.
Publication link
https://arxiv.org/pdf/2111.08402
URI
https://d8.irins.org/handle/IITG2025/26170
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