English

Arbitrary linear transformations for photons in the frequency synthetic dimension

Optics 2021-05-12 v1

Abstract

Arbitrary linear transformations are of crucial importance in a plethora of photonic applications spanning classical signal processing, communication systems, quantum information processing and machine learning. Here, we present a new photonic architecture to achieve arbitrary linear transformations by harnessing the synthetic frequency dimension of photons. Our structure consists of dynamically modulated micro-ring resonators that implement tunable couplings between multiple frequency modes carried by a single waveguide. By inverse design of these short- and long-range couplings using automatic differentiation, we realize arbitrary scattering matrices in synthetic space between the input and output frequency modes with near-unity fidelity and favorable scaling. We show that the same physical structure can be reconfigured to implement a wide variety of manipulations including single-frequency conversion, nonreciprocal frequency translations, and unitary as well as non-unitary transformations. Our approach enables compact, scalable and reconfigurable integrated photonic architectures to achieve arbitrary linear transformations in both the classical and quantum domains using current state-of-the-art technology.

Keywords

Cite

@article{arxiv.2009.02008,
  title  = {Arbitrary linear transformations for photons in the frequency synthetic dimension},
  author = {Siddharth Buddhiraju and Avik Dutt and Momchil Minkov and Ian A. D. Williamson and Shanhui Fan},
  journal= {arXiv preprint arXiv:2009.02008},
  year   = {2021}
}

Comments

12 pages, 7 figures

R2 v1 2026-06-23T18:18:35.633Z