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A heterogeneously integrated coupled-cavity frequency beam splitter

Lucas M. Cohen, Manuel H. Muñoz-Arias, Mohan Sarovar, Nicholas A. Boynton, Shawn C. Arterburn, Thomas A. Friedmann, Nils T. Otterstrom, Paul S. Davids, Michael Gehl·August 26, 2026
Quantum Physicsphysics.optics

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Abstract

Frequency encoded photonic qubits promise a scalable path towards high-dimensional quantum information processing, but require efficient components for coherently mixing frequency modes. Coupled cavity modulators provide this functionality by using only a single driving microwave tone to couple hybridized optical supermodes. Here, we demonstrate a heterogeneously integrated thin-film lithium-niobate-on-silicon coupled-cavity modulator that realizes tunable bidirectional frequency mode transformations, including \(50/50\) beam splitting and near complete frequency swapping with \(>20~\mathrm{dB}\) pump extinction at a \(10~\mathrm{GHz}\) supermode splitting. Because the electro-optic film is bonded onto a foundry fabricated silicon photonics platform, the approach is compatible with co-integration of photon pair sources, spectral filters, active tuning elements, and single photon detectors. We also bond thin-film lithium tantalate onto the same coupled-cavity platform, demonstrating material flexibility for scalable integrated frequency bin quantum photonic circuits.

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