YoonSeok Baek
KAIST 물리학과 · 물리·천문학
윤석백 교수의 연구실은 렌즈리스 및 고해상도 광학 영상 기술을 중심으로, 디지털 허프로그래피, 정량적 위상 영상(QPI), Kramers–코니그 관계 기반 영상 복원 등 첨단 광학 및 계산 영상 기법을 개발하고 있습니다. 특히, 표면 미세 구조 측정, 생체조직 영상, 고속·고해상도 복소 진폭 영상 구현에 초점을 맞추고 있으며, 기존의 렌즈 기반 영상 시스템의 한계를 극복하는 혁신적인 접근을 선도하고 있습니다. 연구는 의료 진단, 나노소재 분석, 반도체 검사 등 응용 분야로 확장되고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Modern optical imaging possesses a huge information capacity whose corresponding space-bandwidth product (SBP) reaches tens of megapixels. However, despite the advances in optical and electronic devices, the SBP of an optical microscope is greatly limited, resulting in a reduced field of view or resolution of an image. In this paper, we exploit the Kramers–Kronig relations in digital holography to achieve high SBP imaging, demonstrating a complex amplitude image that can surpass the SBP of a bri
We introduce the white-light quantitative phase imaging unit (WQPIU) as a practical realization of quantitative phase imaging (QPI) on standard microscope platforms. The WQPIU is a compact stand-alone unit which measures sample induced phase delay under white-light illumination. It does not require any modification of the microscope or additional accessories for its use. The principle of the WQPIU based on lateral shearing interferometry and phase shifting interferometry provides a cost-effectiv
Surface topology measurements of micro- or nanostructures are essential for both scientific and industrial applications. However, high-throughput measurements remain challenging in surface metrology. We present single-shot full-field surface topography measurement using Kramers-Kronig holographic imaging and spectral multiplexing. Three different intensity images at different incident angles were simultaneously measured with three different colors, from which a quantitative phase image was retri
The development of optical and computational techniques has enabled imaging without the need for traditional optical imaging systems. Modern lensless imaging techniques overcome several restrictions imposed by lenses, while preserving or even surpassing the capability of lens-based imaging. However, existing lensless methods often rely on a priori information about objects or imaging conditions. Thus, they are not ideal for general imaging purposes. The recent development of the speckle-correlat
Quantitative phase imaging (QPI) exploits sample-induced changes in the optical field to analyze biological specimens in a label-free manner. However, the quantitative nature of QPI makes it susceptible to optical aberrations. We propose a method for calibrating pupil aberrations by imaging a sample of interest. The proposed method recovers pupil information by utilizing the cross-spectral density between optical fields at different incident angles and allows both thin and weakly scattering thre
We found an error in Fig. 1 of our article "White-light Quantitative Phase Imaging Unit." Here we publish the revised figure.
We present intensity-based quantitative phase imaging with an optical microscope and illumination control by exploiting the space-domain Kramers-Kronig relations that transform the spatial variation in intensity to the spatial variation in phase.
Three-dimensional (3D) high-resolution imaging is essential in microscopy, yet light scattering poses significant challenges in achieving it. Here, we present an approach to holographic imaging of spatially incoherent objects through scattering media, utilizing a virtual medium that replicates the scattering effects of the actual medium. This medium is constructed by retrieving mutually incoherent fields from the object and exploiting the spatial correlations between them. By numerically propaga
Shaping light deep inside complex media, such as biological tissue, is critical to many research fields. Although the coherent control of scattered light via wavefront shaping has made significant advances in addressing this challenge, controlling light over extended or multiple targets without physical access inside a medium remains elusive. Here we present a phase conjugation method for spatially incoherent light, which enables the non-invasive light control based on incoherent emission from m
We present white light quantitative phase imaging unit (WQIU) as a practical realization of quantitative phase imaging. WQPIU which consists of a liquid crystal retarder, birefringent crystals and polarizers, enables quantitative phase imaging at conventional microscopes with incoherent illumination