Spectro-temporally tailored Non-Gaussian Quantum Operations in Thin-Film Waveguides

Fuente: arXiv
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Bibliographic Details
Main Authors: Namdar, Peter, Folge, Patrick, Lopetegui, Carlos E., Babel, Silia, Brecht, Benjamin, Silberhorn, Christine, Parigi, Valentina
Format: Preprint
Published: 2025
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author Namdar, Peter
Folge, Patrick
Lopetegui, Carlos E.
Babel, Silia
Brecht, Benjamin
Silberhorn, Christine
Parigi, Valentina
author_facet Namdar, Peter
Folge, Patrick
Lopetegui, Carlos E.
Babel, Silia
Brecht, Benjamin
Silberhorn, Christine
Parigi, Valentina
contents Advancements in photonic platforms have enabled the precise control of light's spectral and temporal degrees of freedom, a capability crucial for the development of scalable quantum information systems. In this work, we address the challenge of implementing spectro-temporal mode-selective non-Gaussian quantum operations, specifically single-photon subtraction (SPS) and addition (SPA), in the telecom wavelength regime. Building on prior experimental demonstrations of mode-selective near-infrared SPS, we present the first design framework for achieving mode-selective SPA and SPS using thin-film lithium niobate nonlinear waveguide platforms. We introduce an inverse-design optimization scheme by modeling the quantum-optical response via the Joint Spectral Amplitude and Transfer Function, in order to identify optimal waveguide and pump parameters that maximize mode selectivity and state purity. This approach is first tested on a metallic waveguide design. We then exploit the dispersion engineering capabilities of thin-film waveguides, which offer enhanced nonlinear interactions through tighter light confinement. Our findings demonstrate that tailored nonlinear processes, particularly parametric down-conversion and frequency up-conversion, can support high-fidelity non-Gaussian operations essential for next-generation quantum photonic networks.
format Preprint
id arxiv_https___arxiv_org_abs_2508_04578
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Spectro-temporally tailored Non-Gaussian Quantum Operations in Thin-Film Waveguides
Namdar, Peter
Folge, Patrick
Lopetegui, Carlos E.
Babel, Silia
Brecht, Benjamin
Silberhorn, Christine
Parigi, Valentina
Quantum Physics
Advancements in photonic platforms have enabled the precise control of light's spectral and temporal degrees of freedom, a capability crucial for the development of scalable quantum information systems. In this work, we address the challenge of implementing spectro-temporal mode-selective non-Gaussian quantum operations, specifically single-photon subtraction (SPS) and addition (SPA), in the telecom wavelength regime. Building on prior experimental demonstrations of mode-selective near-infrared SPS, we present the first design framework for achieving mode-selective SPA and SPS using thin-film lithium niobate nonlinear waveguide platforms. We introduce an inverse-design optimization scheme by modeling the quantum-optical response via the Joint Spectral Amplitude and Transfer Function, in order to identify optimal waveguide and pump parameters that maximize mode selectivity and state purity. This approach is first tested on a metallic waveguide design. We then exploit the dispersion engineering capabilities of thin-film waveguides, which offer enhanced nonlinear interactions through tighter light confinement. Our findings demonstrate that tailored nonlinear processes, particularly parametric down-conversion and frequency up-conversion, can support high-fidelity non-Gaussian operations essential for next-generation quantum photonic networks.
title Spectro-temporally tailored Non-Gaussian Quantum Operations in Thin-Film Waveguides
topic Quantum Physics
url https://arxiv.org/abs/2508.04578