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Updated: Aug 18, 2026

Generation and Coherent Control of Pulsed Quantum Frequency Combs
Published on: June 8, 2018
Non-Abelian Electric Field and Zitterbewegung on a Photonic Frequency Chain
Shu Yang1,2, Bengy Tsz Tsun Wong1,2, Jinbing Hu1,2,3
1The University of Hong Kong, Department of Physics and HK Institute of Quantum Science and Technology, Pokfulam, Hong Kong, China.
None:
The synthetic frequency dimension, which realizes fictitious spatial dimensions from the spectral degree of freedom, has emerged as a promising platform for engineering artificial gauge fields in studying quantum simulations and topological physics with photons. A current central task for frequency-domain photons is the creation and manipulation of nontrivial non-Abelian field strength tensors and to observe their governing dynamics. Here, we experimentally demonstrate a minimal scheme for creating non-Abelian electric fields in a photonic frequency chain using a polarization-multiplexed, time-modulated ring resonator. By engineering spin-orbit coupling via modulation phase offset, polarization rotation, and polarization retardation, we achieve programmable control over synthetic Floquet bands and their quasimomentum spin-resolved textures. Leveraging self-heterodyne coherent detection, we demonstrate Zitterbewegung-a trembling motion of photons-induced by non-Abelian electric fields on the frequency chain. We further observe the interference between Zitterbewegung and Bloch oscillations arising from the coexistence of non-Abelian and Abelian electric fields. Our Letter bridges synthetic dimensions with non-Abelian gauge theory for versatile photonic emulation of relativistic quantum mechanics and spinor dynamics and can be instrumental in applications like frequency-domain optical computation and multimodal frequency comb control.
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