Pohang University of Science and Technology · 工学
Professor Jin Young Kim's research lab specializes in advancing photoacoustic microscopy for biomedical imaging, with a focus on developing high-speed, high-resolution, and compact imaging systems for real-time in vivo and intraoperative applications. The lab pioneers innovative microelectromechanical systems (MEMS) scanners and ultraviolet photoacoustic microscopy (UV-PAM) to enable label-free, cellular-level histopathological imaging without tissue processing. Their work emphasizes practical clinical translation, particularly in cancer surgery guidance and preclinical disease monitoring.
Figures are computed from collected data and may differ slightly.
Optical-resolution photoacoustic microscopy (OR-PAM) is a novel label-free microscopic imaging tool to provide in vivo optical absorbing contrasts. Specially, it is crucial to equip a real-time imaging capability without sacrificing high signal-to-noise ratios (SNRs) for identifying and tracking specific diseases in OR-PAM. Herein we demonstrate a 2-axis water-proofing MEMS scanner made of flexible PDMS. This flexible scanner results in a wide scanning range (9 × 4 mm(2) in a transverse plane) a
Abstract During cancer resection surgeries, intraoperative histopathologic examination of the surgical specimen is crucial for tumor margin identification. A conventional frozen‐section analysis requires complex tissue processing, which prolongs surgery and potentially introduces interpretation errors. Here, as a novel approach to label‐free intraoperative histopathology, a high‐speed reflection‐mode ultraviolet photoacoustic microscopy (UV‐PAM) system employing a waterproof 1‐axis microelectrom
Optical-resolution photoacoustic microscopy (OR-PAM), a promising microscopic imaging technique with high ultrasound resolution and superior optical sensitivity, can provide anatomical, functional, and molecular information at scales ranging from the microvasculature to single red blood cells. In particular, real-time OR-PAM imaging with a high signal-to-noise ratio (SNR) is a prerequisite for widespread use in preclinical and clinical applications. Although several technical approaches have bee
Abstract Ultraviolet photoacoustic microscopy (UV‐PAM), based on the high intrinsic optical absorption of DNA/RNA, holds great promise for intraoperative label‐free histopathological imaging modalities. Although clinical histopathology requires high‐resolution images to observe individual cell structures, conventional UV‐PAM suffers from relatively low resolution compared to the clinical histological modalities. Notably, opto‐ultrasound beam combiners or ring‐shaped ultrasound transducers, which
Photoacoustic (PA) imaging combines optical contrast with ultrasound (US) detection, enabling high-resolution imaging of biological tissues with greater penetration depth than conventional optical techniques. Among its various implementations, photoacoustic microscopy (PAM) achieves micrometer-scale resolution by focusing laser excitation and detecting ultrasonic signals, allowing for the detailed visualization of microvascular structures and fine tissue morphology. Over the last decade, PAM ima
Optical-resolution photoacoustic microscopy (OR-PAM) is a novel microscopic tool to provide in vivo optically sensitive images in biomedical research. Conventional OR-PAM systems are typically slow and bulky because of the linear scanning stages with stepping motors. For practical purposes, however, fast imaging speed and small footprint are crucial. To address these issues, we have developed a real-time compact OR-PAM system equipped with a waterproof two-axis MEMS scanner. The OR-PAM system co
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