Designing interferometers within a single optical beam

Fuente: arXiv
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Main Authors: Sephton, Bereneice, Thomas, Rakhi, Schiano, Carlo, Reda, Francesco, Januariyasa, I Komang, Cardano, Filippo, Piccirillo, Bruno, Salvatore, Marcella, Oscurato, Stefano Luigi, de Lisio, Corrado, D'Ambrosio, Vincenzo
Format: Preprint
Published: 2026
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author Sephton, Bereneice
Thomas, Rakhi
Schiano, Carlo
Reda, Francesco
Januariyasa, I Komang
Cardano, Filippo
Piccirillo, Bruno
Salvatore, Marcella
Oscurato, Stefano Luigi
de Lisio, Corrado
D'Ambrosio, Vincenzo
author_facet Sephton, Bereneice
Thomas, Rakhi
Schiano, Carlo
Reda, Francesco
Januariyasa, I Komang
Cardano, Filippo
Piccirillo, Bruno
Salvatore, Marcella
Oscurato, Stefano Luigi
de Lisio, Corrado
D'Ambrosio, Vincenzo
contents Interferometry provides highly sensitive access to optical phase and is central to much of modern metrology and phase imaging methods. Conventional implementations, however, often face trade-offs between mechanical stability and experimental or computational complexity. Here, we present a general framework for designing custom interferometers within a single optical beam by exploiting structured light. This approach yields compact, robust common-path configurations that bypass the need for complex post-processing and can easily be integrated into existing setups. We demonstrate the versatility of this concept by designing a range of interferometers, each tailored by the structured mode, and implement them through active and passive modal conversion optics, proving its adaptability to different experimental requirements. To showcase the practical utility of our framework, we apply it to quantitative phase imaging over a variety of physical samples, showing excellent agreement with atomic force microscopy benchmarks. Furthermore, we emphasise the flexibility of our structured light interferometers by mapping phase objects to a choice of either amplitude or polarisation, the latter providing a direct route toward real-time phase-retrieval. This cost-effective approach offers a practical, high-throughput solution for phase-sensitive metrology across fields such as fundamental physics, biology, and material science.
format Preprint
id arxiv_https___arxiv_org_abs_2604_21485
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Designing interferometers within a single optical beam
Sephton, Bereneice
Thomas, Rakhi
Schiano, Carlo
Reda, Francesco
Januariyasa, I Komang
Cardano, Filippo
Piccirillo, Bruno
Salvatore, Marcella
Oscurato, Stefano Luigi
de Lisio, Corrado
D'Ambrosio, Vincenzo
Optics
Interferometry provides highly sensitive access to optical phase and is central to much of modern metrology and phase imaging methods. Conventional implementations, however, often face trade-offs between mechanical stability and experimental or computational complexity. Here, we present a general framework for designing custom interferometers within a single optical beam by exploiting structured light. This approach yields compact, robust common-path configurations that bypass the need for complex post-processing and can easily be integrated into existing setups. We demonstrate the versatility of this concept by designing a range of interferometers, each tailored by the structured mode, and implement them through active and passive modal conversion optics, proving its adaptability to different experimental requirements. To showcase the practical utility of our framework, we apply it to quantitative phase imaging over a variety of physical samples, showing excellent agreement with atomic force microscopy benchmarks. Furthermore, we emphasise the flexibility of our structured light interferometers by mapping phase objects to a choice of either amplitude or polarisation, the latter providing a direct route toward real-time phase-retrieval. This cost-effective approach offers a practical, high-throughput solution for phase-sensitive metrology across fields such as fundamental physics, biology, and material science.
title Designing interferometers within a single optical beam
topic Optics
url https://arxiv.org/abs/2604.21485