Leveraging partial coherence in interferometric microscopy to enhance nanoparticle detection sensitivity and throughput

Fuente: arXiv
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Main Authors: Lombardo, Chiara, Sottini, Andrea, Seiter, Sarina, Francs, Gerard Colas des, Arroyo, Jaime Ortega, Quidant, Romain
Format: Preprint
Published: 2025
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author Lombardo, Chiara
Sottini, Andrea
Seiter, Sarina
Francs, Gerard Colas des
Arroyo, Jaime Ortega
Quidant, Romain
author_facet Lombardo, Chiara
Sottini, Andrea
Seiter, Sarina
Francs, Gerard Colas des
Arroyo, Jaime Ortega
Quidant, Romain
contents Interferometric-based microscopies stand as powerful label-free approaches for monitoring and characterising chemical reactions and heterogeneous nanoparticle systems in real time with single particle sensitivity. Nevertheless, coherent artifacts, such as speckle and parasitic interferences, together with limited photon fluxes from spatially incoherent sources, pose an ongoing challenge in achieving both high sensitivity and throughput. In this study, we systematically characterise how partial coherence affects both the signal contrast and the background noise level; thus, it offers a route to improve the signal-to-noise ratio from single nanoparticles (NPs), irrespective of their size and composition; or the light source used. We first validate that lasers can be modified into partially coherent sources with performance matching that of spatially incoherent ones; while providing higher photon fluxes. Secondly, we demonstrate that tuning the degree of partial coherence not only enhances the detection sensitivity of both synthetic and biological NPs, but also affects how signal contrasts vary as a function of the focus position. Finally, we apply our findings to single-protein detection, confirming that these principles extend to differential imaging modalities, which deliver the highest sensitivity. Our results address a critical milestone in the detection of weakly scattering NPs in complex matrices, with wide-ranging applications in biotechnology, nanotechnology, chemical synthesis, and biosensing; ushering a new generation of microscopes that push both the sensitivity and throughput boundaries without requiring beam scanning.
format Preprint
id arxiv_https___arxiv_org_abs_2503_22565
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Leveraging partial coherence in interferometric microscopy to enhance nanoparticle detection sensitivity and throughput
Lombardo, Chiara
Sottini, Andrea
Seiter, Sarina
Francs, Gerard Colas des
Arroyo, Jaime Ortega
Quidant, Romain
Optics
Biological Physics
Quantitative Methods
Interferometric-based microscopies stand as powerful label-free approaches for monitoring and characterising chemical reactions and heterogeneous nanoparticle systems in real time with single particle sensitivity. Nevertheless, coherent artifacts, such as speckle and parasitic interferences, together with limited photon fluxes from spatially incoherent sources, pose an ongoing challenge in achieving both high sensitivity and throughput. In this study, we systematically characterise how partial coherence affects both the signal contrast and the background noise level; thus, it offers a route to improve the signal-to-noise ratio from single nanoparticles (NPs), irrespective of their size and composition; or the light source used. We first validate that lasers can be modified into partially coherent sources with performance matching that of spatially incoherent ones; while providing higher photon fluxes. Secondly, we demonstrate that tuning the degree of partial coherence not only enhances the detection sensitivity of both synthetic and biological NPs, but also affects how signal contrasts vary as a function of the focus position. Finally, we apply our findings to single-protein detection, confirming that these principles extend to differential imaging modalities, which deliver the highest sensitivity. Our results address a critical milestone in the detection of weakly scattering NPs in complex matrices, with wide-ranging applications in biotechnology, nanotechnology, chemical synthesis, and biosensing; ushering a new generation of microscopes that push both the sensitivity and throughput boundaries without requiring beam scanning.
title Leveraging partial coherence in interferometric microscopy to enhance nanoparticle detection sensitivity and throughput
topic Optics
Biological Physics
Quantitative Methods
url https://arxiv.org/abs/2503.22565