Cryogenic microwave frequency combs based on quantum paraelectric superconducting resonators

Fuente: arXiv
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Main Authors: Muragesh, Prasad, Sundaresan, Harikrishnan, Thalakulam, Madhu
Format: Preprint
Published: 2026
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author Muragesh, Prasad
Sundaresan, Harikrishnan
Thalakulam, Madhu
author_facet Muragesh, Prasad
Sundaresan, Harikrishnan
Thalakulam, Madhu
contents A frequency comb, known for its precision as an "optical ruler", features an evenly spaced spectral pattern. While these combs are vital in photonic quantum technologies, their microwave counterparts are now highly sought after for cryogenic quantum technologies, including semiconducting and superconducting qubits and quantum electrical metrology, which mainly operate in the microwave regime. However, microwave combs are still largely underexplored, and typically rely on complex, high-power optical systems incompatible with the low-power, cryogenic on-chip quantum technologies. In this manuscript, we present an all-electrical, on-chip, cryogenic microwave frequency comb on Strontium Titanate (SrTiO$_3$), exploiting its Pockels-like effect in its quantum paraelectric phase. Our device, utilizing a superconducting microwave cavity, generating the frequency comb via cavity phase modulation enabled by the field-induced effective $χ(2)$ of SrTiO$_3$. The ability to continuously vary the dielectric constant of SrTiO$_3$ by the application of electric field, in its quantum paraelectric phase, makes it possible to control the comb's operating frequency range. The exceptionally high dielectric constant of SrTiO$_3$, > 20,000 in its quantum paraelectric state, enables an ultra-miniature design and on-chip integration with cryogenic quantum technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2605_13571
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Cryogenic microwave frequency combs based on quantum paraelectric superconducting resonators
Muragesh, Prasad
Sundaresan, Harikrishnan
Thalakulam, Madhu
Mesoscale and Nanoscale Physics
A frequency comb, known for its precision as an "optical ruler", features an evenly spaced spectral pattern. While these combs are vital in photonic quantum technologies, their microwave counterparts are now highly sought after for cryogenic quantum technologies, including semiconducting and superconducting qubits and quantum electrical metrology, which mainly operate in the microwave regime. However, microwave combs are still largely underexplored, and typically rely on complex, high-power optical systems incompatible with the low-power, cryogenic on-chip quantum technologies. In this manuscript, we present an all-electrical, on-chip, cryogenic microwave frequency comb on Strontium Titanate (SrTiO$_3$), exploiting its Pockels-like effect in its quantum paraelectric phase. Our device, utilizing a superconducting microwave cavity, generating the frequency comb via cavity phase modulation enabled by the field-induced effective $χ(2)$ of SrTiO$_3$. The ability to continuously vary the dielectric constant of SrTiO$_3$ by the application of electric field, in its quantum paraelectric phase, makes it possible to control the comb's operating frequency range. The exceptionally high dielectric constant of SrTiO$_3$, > 20,000 in its quantum paraelectric state, enables an ultra-miniature design and on-chip integration with cryogenic quantum technologies.
title Cryogenic microwave frequency combs based on quantum paraelectric superconducting resonators
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2605.13571