Nanodomain poling unlocking backward nonlinear light generation in thin film lithium niobate

Fuente: arXiv
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Autori principali: Sabatti, Alessandra, Kellner, Jost, Chapman, Robert J., Grange, Rachel
Natura: Preprint
Pubblicazione: 2025
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author Sabatti, Alessandra
Kellner, Jost
Chapman, Robert J.
Grange, Rachel
author_facet Sabatti, Alessandra
Kellner, Jost
Chapman, Robert J.
Grange, Rachel
contents Nonlinear frequency conversion offers powerful capabilities for applications in telecommunications, signal processing, and computing. Thin-film lithium niobate (TFLN) has emerged as a promising integrated photonics platform due to its strong electro-optic effect and second-order nonlinearity, which can be exploited through periodic poling. However, conventional poling techniques in x-cut TFLN are limited to minimum period sizes on the order of microns, preventing the efficient generation of interactions involving counter-propagating waves. Here we report scalable periodic poling of x-cut TFLN with periods down to 215 nm and realize devices for counter- and back-propagating phase matching. We estimate conversion efficiencies of 1474 $\%$/W/cm$^2$ and 45 $\%$/W/cm$^2$ respectively, and measuring sum frequency generation we confirm that the nonlinear generation takes place in the desired direction. We report spontaneous parametric down conversion for the counter-propagating and, for the first time, for a backward propagating device. This technological advance provides the control of domain geometry in TFLN with an unprecedented precision and leads into the generation of photon pairs with spatial and spectral properties tailored for quantum signal processing, quantum computing and metrology.
format Preprint
id arxiv_https___arxiv_org_abs_2507_13004
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Nanodomain poling unlocking backward nonlinear light generation in thin film lithium niobate
Sabatti, Alessandra
Kellner, Jost
Chapman, Robert J.
Grange, Rachel
Optics
Nonlinear frequency conversion offers powerful capabilities for applications in telecommunications, signal processing, and computing. Thin-film lithium niobate (TFLN) has emerged as a promising integrated photonics platform due to its strong electro-optic effect and second-order nonlinearity, which can be exploited through periodic poling. However, conventional poling techniques in x-cut TFLN are limited to minimum period sizes on the order of microns, preventing the efficient generation of interactions involving counter-propagating waves. Here we report scalable periodic poling of x-cut TFLN with periods down to 215 nm and realize devices for counter- and back-propagating phase matching. We estimate conversion efficiencies of 1474 $\%$/W/cm$^2$ and 45 $\%$/W/cm$^2$ respectively, and measuring sum frequency generation we confirm that the nonlinear generation takes place in the desired direction. We report spontaneous parametric down conversion for the counter-propagating and, for the first time, for a backward propagating device. This technological advance provides the control of domain geometry in TFLN with an unprecedented precision and leads into the generation of photon pairs with spatial and spectral properties tailored for quantum signal processing, quantum computing and metrology.
title Nanodomain poling unlocking backward nonlinear light generation in thin film lithium niobate
topic Optics
url https://arxiv.org/abs/2507.13004