Theoretical model of microparticle-assisted super-resolution microscopy

We present the three-dimensional theoretical model of microparticle-assisted super-resolution imaging that enables simulation of virtual image formation. The model shows that partial spatial coherence of the illumination is a key prerequisite for achieving super-resolution. We demonstrate that a spherical microparticle enhances the resolving power of an optical system with a limited numerical aperture, allowing features near the particle to be resolved up to the Abbe limit. To overcome this limit, high-frequency oscillations in the spatial correlation function of the radiation are required, leading to out-of-phase superposition of image contributions from different object points. We further show that, in this regime, the optical resolution deteriorates as the object size decreases. Overall, the results establish a consistent framework that reproduces experimentally observed subwavelength imaging and clarifies the underlying physical mechanisms.

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Publication Details

Journal
Journal of Applied Physics
Published
2026-08-28
DOI
https://doi.org/10.1063/5.0340761
Primary Topic
Photoacoustic and Ultrasonic Imaging
Type
article
Field-Weighted Citation Impact
0.00

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article

Theoretical model of microparticle-assisted super-resolution microscopy

A. R. Bekirov
Journal of Applied Physics
Photoacoustic and Ultrasonic Imaging
article

Theoretical model of microparticle-assisted super-resolution microscopy

A. R. Bekirov
article en

Abstract

We present the three-dimensional theoretical model of microparticle-assisted super-resolution imaging that enables simulation of virtual image formation. The model shows that partial spatial coherence of the illumination is a key prerequisite for achieving super-resolution. We demonstrate that a spherical microparticle enhances the resolving power of an optical system with a limited numerical aperture, allowing features near the particle to be resolved up to the Abbe limit. To overcome this limit, high-frequency oscillations in the spatial correlation function of the radiation are required, leading to out-of-phase superposition of image contributions from different object points. We further show that, in this regime, the optical resolution deteriorates as the object size decreases. Overall, the results establish a consistent framework that reproduces experimentally observed subwavelength imaging and clarifies the underlying physical mechanisms.

Journal of Applied PhysicsVol. 140(8)
Lomonosov Moscow State University (RU)
Foundation for the Advancement of Theoretical Physics and Mathematics
Openalex Percentile: Top 100%
Photoacoustic and Ultrasonic Imaging
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