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arXiv · 2606.09197

Compact Optical-Resolution Photoacoustic Microscopy System with Reflective Objective-Based Transducer Integration

Abstract

We present an optical-resolution photoacoustic microscopy (OR-PAM) system designed to overcome key limitations in conventional transducer integration within a compact microscopy configuration, while preserving high optical performance and improving acoustic detection efficiency. The system uses a reflective objective that reduces spatial constraints within the optical pathway, enabling the integration of a large-area PVDF transducer within the optical obscuration zone. The system performance was characterized through spatial resolution analysis, laser pulse energy measurement at the sample plane, and evaluation of photoacoustic signal dependence on laser pulse energy. For biological validation, OR-PAM imaging of sections from B16F10 tumors implanted in mice was performed and compared with optical microscopy and H&E stained histological sections. The results demonstrate strong spatial correlation between photoacoustic signal intensity and melanin rich regions, confirming label-free sensitivity to endogenous optical absorbers at 532 nm. This work establishes a compact OR-PAM imaging setup with improved optical-acoustic integration for high resolution biomedical imaging applications, with potential for future extension to multi-wavelength laser excitation.

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Albano Tabacchi, Bhanu Pratap Singh, Michael Jaeger, Damien Guignet, Mirjam Schenk, Pavel Subochev, Martin Frenz, Andre Stefanov. 2026-06-08. Compact Optical-Resolution Photoacoustic Microscopy System with Reflective Objective-Based Transducer Integration. https://arxiv.org/abs/2606.09197

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