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Mooseok Jang

Korea Advanced Institute of Science and Technology · Physics and Astronomy

About the Lab

Professor Mooseok Jang's research lab specializes in advancing optical imaging and wavefront control techniques for deep-tissue and dynamic biological applications. The lab focuses on overcoming the challenges of light scattering in biological tissues through innovative methods such as optical phase conjugation, metasurface-enhanced wavefront sensing, and novel gating strategies. Key research directions include real-time wavefront correction, low-photon-level focusing, and the development of robust optical systems for dynamic and thick scattering media.

optical phase conjugationwavefront shapingscattering mediabiomedical opticsmetasurface optics

Research Overview

Papers
64
Total Citations
1,344
Papers (5y)
35
Primary Field
Physics and Astronomy

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
35total
2022
2023
2024
2025
2026
Citations per year (5y)
199total
20222023202420252026

Selected Papers

15
1
Article|90 citations·2014
Relation between speckle decorrelation and optical phase conjugation (OPC)-based turbidity suppression through dynamic scattering media: a study on in vivo mouse skin
Mooseok Jang, Haowen Ruan, Ivo M. Vellekoop, Benjamin Judkewitz, Euiheon Chung, Changhuei Yang
SJR Q1Biomedical Optics ExpressOA

Light scattering in biological tissue significantly limits the accessible depth for localized optical interrogation and deep-tissue optical imaging. This challenge can be overcome by exploiting the time-reversal property of optical phase conjugation (OPC) to reverse multiple scattering events or suppress turbidity. However, in living tissue, scatterers are highly movable and the movement can disrupt time-reversal symmetry when there is a latency in the OPC playback. In this paper, we show that t

Biomedical EngineeringEngineering
2
Article|67 citations·2014
Method for auto-alignment of digital optical phase conjugation systems based on digital propagation
Mooseok Jang, Haowen Ruan, Haojiang Zhou, Benjamin Judkewitz, Changhuei Yang
SJR Q1Optics ExpressOA

Optical phase conjugation (OPC) has enabled many optical applications such as aberration correction and image transmission through fiber. In recent years, implementation of digital optical phase conjugation (DOPC) has opened up the possibility of its use in biomedical optics (e.g. deep-tissue optical focusing) due to its ability to provide greater-than-unity OPC reflectivity (the power ratio of the phase conjugated beam and input beam to the OPC system) and its flexibility to accommodate additio

Acoustics and UltrasonicsPhysics and Astronomy
3
Article|46 citations·2023
Deep learning based on parameterized physical forward model for adaptive holographic imaging with unpaired data
Chanseok Lee, Gookho Song, Hyeonggeon Kim, Jong Chul Ye, Mooseok Jang
SJR Q1Nature Machine Intelligence
Atomic and Molecular Physics, and OpticsPhysics and Astronomy
4
Article|45 citations·2024
Meta Shack–Hartmann wavefront sensor with large sampling density and large angular field of view: phase imaging of complex objects
Gi-Hyun Go, Dong-gu Lee, Jae-Yeon Oh, Gookho Song, Doeon Lee, Mooseok Jang
SJR Q1Light Science & ApplicationsOA

Abstract Shack–Hartmann wavefront sensors measure the local slopes of an incoming wavefront based on the displacement of focal spots created by a lenslet array, serving as key components for adaptive optics for astronomical and biomedical imaging. Traditionally, the challenges in increasing the density and the curvature of the lenslet have limited the use of such wavefront sensors in characterizing slowly varying wavefront structures. Here, we develop a metasurface-enhanced Shack–Hartmann wavefr

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
5
Article|33 citations·2016
Analyzing the relationship between decorrelation time and tissue thickness in acute rat brain slices using multispeckle diffusing wave spectroscopy
Joshua Brake, Mooseok Jang, Changhuei Yang
SJR Q2Journal of the Optical Society of America AOA

Novel techniques in the field of wavefront shaping have enabled light to be focused deep inside or through scattering media such as biological tissue. However, most of these demonstrations have been limited to thin, static samples since these techniques are very sensitive to changes in the arrangement of the scatterers within. As the samples of interest get thicker, the influence of the dynamic nature of the sample becomes even more pronounced and the window of time in which the wavefront soluti

Acoustics and UltrasonicsPhysics and Astronomy
6
Article|24 citations·2022
Deep learning for lensless imaging
Hyeonggeon Kim, Gookho Song, Jong-in You, Chanseok Lee, Mooseok Jang
SJR Q3Journal of the Korean Physical Society
Atomic and Molecular Physics, and OpticsPhysics and Astronomy
7
Article|23 citations·2020
Deep tissue space-gated microscopy via acousto-optic interaction
Mooseok Jang, Hakseok Ko, Jin Hee Hong, Won‐Kyu Lee, Jae‐Seung Lee, Wonshik Choi
SJR Q1Nature CommunicationsOA

To extend the imaging depth of high-resolution optical microscopy, various gating operations-confocal, coherence, and polarization gating-have been devised to filter out the multiply scattered wave. However, the imaging depth is still limited by the multiply scattered wave that bypasses the existing gating operations. Here, we present a space gating method, whose mechanism is independent of the existing methods and yet effective enough to complement them. Specifically, we reconstruct an image on

Biomedical EngineeringEngineering
8
Article|23 citations·2017
Optical Phase Conjugation with Less Than a Photon per Degree of Freedom
Mooseok Jang, Changhuei Yang, Ivo M. Vellekoop
SJR Q1Physical Review LettersOA

We demonstrate experimentally that optical phase conjugation can be used to focus light through strongly scattering media even when far less than a photon per optical degree of freedom is detected. We found that the best achievable intensity contrast is equal to the total number of detected photons, as long as the resolution of the system is high enough. Our results demonstrate that phase conjugation can be used even when the photon budget is extremely low, such as in high-speed focusing through

Acoustics and UltrasonicsPhysics and Astronomy
9
Article|21 citations·2014
Model for estimating the penetration depth limit of the time-reversed ultrasonically encoded optical focusing technique
Mooseok Jang, Haowen Ruan, Benjamin Judkewitz, Changhuei Yang
SJR Q1Optics ExpressOA

The time-reversed ultrasonically encoded (TRUE) optical focusing technique is a method that is capable of focusing light deep within a scattering medium. This theoretical study aims to explore the depth limits of the TRUE technique for biological tissues in the context of two primary constraints - the safety limit of the incident light fluence and a limited TRUE's recording time (assumed to be 1 ms), as dynamic scatterer movements in a living sample can break the time-reversal scattering symmetr

Biomedical EngineeringEngineering
10
Article|21 citations·2013
Optical phase conjugation (OPC)-assisted isotropic focusing
Mooseok Jang, Anne Sentenac, Changhuei Yang
SJR Q1Optics ExpressOA

Isotropic optical focusing - the focusing of light with axial confinement that matches its lateral confinement, is important for a broad range of applications. Conventionally, such focusing is achieved by overlapping the focused beams from a pair of opposite-facing microscope objective lenses. However the exacting requirements for the alignment of the objective lenses and the method's relative intolerance to sample turbidity have significantly limited its utility. In this paper, we present an op

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
11
Article|15 citations·2025
Reconstructive spectrometer using double-layer disordered metasurfaces
Dong-gu Lee, Gookho Song, Chunghyeong Lee, Chanseok Lee, Mooseok Jang
SJR Q1Science AdvancesOA

Conventionally, optical spectrometers rely on traditional dispersive elements like grating and prism, which pose inherent challenges for miniaturizing spectrometers, including the trade-off between propagation distance and spectral resolution and calibration ambiguity. Here, we present a random dispersive element-double-layer disordered metasurfaces-where wavelength-specific speckle patterns can be uniquely determined a priori without ambiguity in wavelength and propagation distance. By directly

Acoustics and UltrasonicsPhysics and Astronomy
12
Article|10 citations·2024
Large-volume focus control at 10 MHz refresh rate via fast line-scanning amplitude-encoded scattering-assisted holography
Atsushi Shibukawa, Ryota Higuchi, Gookho Song, Hideharu Mikami, Yuki Sudo, Mooseok Jang
SJR Q1Nature CommunicationsOA

The capability of focus control has been central to optical technologies that require both high temporal and spatial resolutions. However, existing varifocal lens schemes are commonly limited to the response time on the microsecond timescale and share the fundamental trade-off between the response time and the tuning power. Here, we propose an ultrafast holographic focusing method enabled by translating the speed of a fast 1D beam scanner into the speed of the complex wavefront modulation of a r

Acoustics and UltrasonicsPhysics and Astronomy
13
Article|6 citations·2023
Review of endomicroscopic imaging with coherent manipulation of light through an ultrathin probe
Jae-Yeon Oh, Chunghyeong Lee, Gookho Song, Mooseok Jang
SJR Q2Journal of Optical MicrosystemsOA

Endomicroscopy is a technique to visualize microscopic structures of internal tissues through tubular instruments that can be inserted through a small cut or an opening in the body. There has been a growing demand for miniaturizing endoscopic instruments while preserving a high resolution to achieve a real-time histopathologic diagnosis. Meanwhile, there has recently been tremendous progress in the coherent manipulation of light in which an optical wave is deterministically manipulated through a

Acoustics and UltrasonicsPhysics and Astronomy
14
Article|4 citations·2023
Acousto-optic Volumetric Gating for Reflection-Mode Deep Optical Imaging within a Scattering Medium
Hakseok Ko, Jung‐Hoon Kim, Jin Hee Hong, Junyeob Cheon, Seungwoo Lee, Mooseok Jang, Wonshik Choi
SJR Q1ACS Photonics

Various external gating approaches, based on position, time, and polarization, have proven to be effective in selectively rejecting multiply scattered waves, thereby extending the imaging depth of deep-tissue optical microscopy. However, in a highly scattering medium, a significant portion of multiply scattered waves can bypass these gating operations because of the dissociation between the wave properties inside and outside the scattering medium. Here, we propose a method, termed volumetric gat

Biomedical EngineeringEngineering
15
Article|2 citations·2025
Adaptable deep learning for holographic microscopy: a case study on tissue type and system variability in label-free histopathology
Jiseong Barg, Chanseok Lee, Chunghyeong Lee, Mooseok Jang
Advanced Photonics NexusOA

Holographic microscopy has emerged as a vital tool in biomedicine, enabling visualization of microscopic morphological features of tissues and cells in a label-free manner. Recently, deep learning (DL)-based image reconstruction models have demonstrated state-of-the-art performance in holographic image reconstruction. However, their utility in practice is still severely limited, as conventional training schemes could not properly handle out-of-distribution data. Here, we leverage backpropagation

Atomic and Molecular Physics, and OpticsPhysics and Astronomy

Research Areas

Acoustics and UltrasonicsBiomedical EngineeringAtomic and Molecular Physics, and OpticsRadiationEpidemiologyRadiology, Nuclear Medicine and Imaging

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