High-Dimensional Quantum Photonics: Roadmap
Mehul Malik, Micheal Kues, Takuya Ikuta, Hiroki Takesue, Daniele Bajoni, David J. Moss, Roberto Morandotti, Andrew Forbes, Stephen Walborn, Ebrahim Karimi, Yunhong Ding, Stefano Paesani, Caterina Vigliar, Benjamin Brecht, Christine Silberhorn, Fr\'ed\'eric Bouchard

TL;DR
This roadmap reviews recent advances in high-dimensional quantum photonics, highlighting experimental techniques, theoretical tools, and shared challenges across various photonic degrees-of-freedom for quantum technologies.
Contribution
It provides a comprehensive survey of progress, identifies gaps, and outlines future directions for integrating high-dimensional quantum photonics into advanced quantum platforms.
Findings
Progress in generating and manipulating high-dimensional quantum states
Development of noise-robust quantum communication protocols
Identification of shared challenges across photonic degrees-of-freedom
Abstract
The field of high-dimensional quantum photonics involves the use of multimode photonic degrees-of-freedom such as the spatial, temporal, or spectral structure of light to encode multi-level quantum states. Recent years have seen rapid progress in the development of methods to generate, manipulate, and distribute such quantum states of light and their use in a range of quantum technology applications that offer practical advantages over conventional qubit-based approaches. High-dimensional quantum states of light encoded in photonic time-bins, frequency-bins, transverse-spatial modes, waveguide paths, and temporal modes have enabled noise-robust fundamental tests of quantum mechanics, error-resilient and high-capacity quantum communication protocols, andas well as efficient approaches for quantum information processing, to name just a few examples. However, research in this field has…
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