On-chip polarization-encoded single-qubit gates with twisted waveguides
Fyodor Morozko, Andrey Novitsky, Alexander Mikhalychev, and Alina, Karabchevsky

TL;DR
This paper develops a rigorous theoretical framework for twisted waveguides, demonstrating their ability to perform arbitrary polarization transformations, which advances on-chip polarization control for scalable quantum and classical photonic information processing.
Contribution
The paper introduces a systematic theoretical description of polarization manipulation in twisted waveguides, enabling arbitrary polarization transformations on-chip.
Findings
Twisted waveguides can realize arbitrary polarization transformations.
The developed theory provides closed-form eigenmodes and transmission matrices.
Twisted waveguides are practical, low-cost building blocks for on-chip polarization encoding.
Abstract
Integrated photonics is a remarkable platform for scalable classical and quantum light-based information processing. However, polarization manipulation on a chip despite of its fundamental significance in information processing remains elusive. Polarization manipulation capabilities have been recently demonstrated in femtosecond laser-inscribed twisted waveguides, although the systematic theoretical description of polarization manipulation has not been established for this architecture. In this work we develop a rigorous theory of a twisted waveguide unveiling its eigenmodes and transmission matrix in the closed form. Utilizing the developed theory, we demonstrate that twisted waveguides can realize virtually arbitrary polarization transformations while satisfying reasonable design constraints. This fact combined with low cost and ease of prototyping of laser inscribed photonic…
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Taxonomy
TopicsPhotonic and Optical Devices · Neural Networks and Reservoir Computing · Optical Network Technologies
