Skip to main content

YongKeun Park

Korea Advanced Institute of Science and Technology · Physics and Astronomy

About the Lab

Professor YongKeun Park's research lab specializes in quantitative phase imaging (QPI) and optical metrology to study the biomechanics and pathophysiology of human cells, particularly red blood cells. The lab focuses on noninvasive, label-free imaging techniques such as diffraction phase microscopy, tomographic phase microscopy, and interferometric methods to quantify intrinsic cellular properties like refractive index, membrane fluctuations, and mechanical stiffness. Their work bridges fundamental biophysics with clinical applications, including malaria infection, cancer, and blood disorders, by revealing how cellular structural and mechanical changes correlate with disease states. The lab also develops advanced optical systems, including DMD-based illumination and hybrid phase-fluorescence microscopy, for high-resolution, real-time live-cell imaging.

quantitative phase imagingred blood cell mechanicsoptical interferometrylive-cell imagingbiomechanics of disease

Research Overview

Papers
399
Total Citations
19,629
Papers (5y)
71
Primary Field
Physics and Astronomy

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
71total
2022
2023
2024
2025
2026
Citations per year (5y)
1,201total
20222023202420252026

Selected Papers

15
1
Article|1,806 citations·2018
Quantitative phase imaging in biomedicine
YongKeun Park, Christian Depeursinge, Gabriel Popescu
SJR Q1Nature PhotonicsOA
Atomic and Molecular Physics, and OpticsPhysics and Astronomy
2
Article|689 citations·2008
Refractive index maps and membrane dynamics of human red blood cells parasitized by Plasmodium falciparum
YongKeun Park, Monica Diez-Silva, Gabriel Popescu, George Lykotrafitis, Wonshik Choi, Michael S. Feld, Subra Suresh
SJR Q1Proceedings of the National Academy of SciencesOA

Parasitization by malaria-inducing Plasmodium falciparum leads to structural, biochemical, and mechanical modifications to the host red blood cells (RBCs). To study these modifications, we investigate two intrinsic indicators: the refractive index and membrane fluctuations in P. falciparum-invaded human RBCs (Pf-RBCs). We report experimental connections between these intrinsic indicators and pathological states. By employing two noninvasive optical techniques, tomographic phase microscopy and di

PhysiologyMedicine
3
Article|526 citations·2013
Quantitative Phase Imaging Techniques for the Study of Cell Pathophysiology: From Principles to Applications
KyeoReh Lee, Kyoohyun Kim, JaeHwang Jung, JiHan Heo, Sangyeon Cho, Sangyun Lee, Gyuyoung Chang, YoungJu Jo, Hyunjoo Park, YongKeun Park
SJR Q1SensorsOA

A cellular-level study of the pathophysiology is crucial for understanding the mechanisms behind human diseases. Recent advances in quantitative phase imaging (QPI) techniques show promises for the cellular-level understanding of the pathophysiology of diseases. To provide important insight on how the QPI techniques potentially improve the study of cell pathophysiology, here we present the principles of QPI and highlight some of the recent applications of QPI ranging from cell homeostasis to inf

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
4
Article|419 citations·2010
Measurement of red blood cell mechanics during morphological changes
YongKeun Park, Catherine Best‐Popescu, Kamran Badizadegan, Ramachandra R. Dasari, Michael S. Feld, Tatiana Kuriabova, Mark L. Henle, Alex J. Levine, Gabriel Popescu
SJR Q1Proceedings of the National Academy of SciencesOA

The human red blood cell (RBC) membrane, a fluid lipid bilayer tethered to an elastic 2D spectrin network, provides the principal control of the cell's morphology and mechanics. These properties, in turn, influence the ability of RBCs to transport oxygen in circulation. Current mechanical measurements of RBCs rely on external loads. Here we apply a noncontact optical interferometric technique to quantify the thermal fluctuations of RBC membranes with 3 nm accuracy over a broad range of spatial a

PhysiologyMedicine
5
Article|393 citations·2010
Metabolic remodeling of the human red blood cell membrane
YongKeun Park, Catherine Best‐Popescu, Thorsten Auth, Nir S. Gov, S. A. Safran, Gabriel Popescu, Subra Suresh, Michael S. Feld
SJR Q1Proceedings of the National Academy of SciencesOA

The remarkable deformability of the human red blood cell (RBC) results from the coupled dynamic response of the phospholipid bilayer and the spectrin molecular network. Here we present quantitative connections between spectrin morphology and membrane fluctuations of human RBCs by using dynamic full-field laser interferometry techniques. We present conclusive evidence that the presence of adenosine 5'-triphosphate (ATP) facilitates non-equilibrium dynamic fluctuations in the RBC membrane that are

PhysiologyMedicine
6
Article|255 citations·2006
Diffraction phase and fluorescence microscopy
YongKeun Park, Gabriel Popescu, Kamran Badizadegan, Ramachandra R. Dasari, Michael S. Feld
SJR Q1Optics ExpressOA

We have developed diffraction phase and fluorescence (DPF) microscopy as a new technique for simultaneous quantitative phase imaging and epi-fluorescence investigation of live cells. The DPF instrument consists of an interference microscope, which is incorporated into a conventional inverted fluorescence microscope. The quantitative phase images are characterized by sub-nanometer optical path-length stability over periods from milliseconds to a cell lifetime. The potential of the technique for q

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
7
Article|246 citations·2015
Recent advances in wavefront shaping techniques for biomedical applications
Hyeonseung Yu, Jongchan Park, KyeoReh Lee, Jonghee Yoon, KyungDuk Kim, Shinwha Lee, YongKeun Park
SJR Q2Current Applied PhysicsOA
Acoustics and UltrasonicsPhysics and Astronomy
8
Article|216 citations·2015
Active illumination using a digital micromirror device for quantitative phase imaging
Seungwoo Shin, Kyoohyun Kim, Jonghee Yoon, YongKeun Park
SJR Q1Optics LettersOA

We present a powerful and cost-effective method for active illumination using a digital micromirror device (DMD) for quantitative phase-imaging techniques. Displaying binary illumination patterns on a DMD with appropriate spatial filtering, plane waves with various illumination angles are generated and impinged onto a sample. Complex optical fields of the sample obtained with various incident angles are then measured via Mach-Zehnder interferometry, from which a high-resolution 2D synthetic aper

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
9
Article|214 citations·2017
Ultrahigh-definition dynamic 3D holographic display by active control of volume speckle fields
Hyeonseung Yu, KyeoReh Lee, Jongchan Park, YongKeun Park
SJR Q1Nature Photonics
Media TechnologyEngineering
10
Article|192 citations·2009
Spectroscopic phase microscopy for quantifying hemoglobin concentrations in intact red blood cells
YongKeun Park, Toyohiko Yamauchi, Wonshik Choi, Ramachandra R. Dasari, Michael S. Feld
SJR Q1Optics LettersOA

We report a practical method for label-free quantification of specific molecules using spectroscopic imaging of sample-induced phase shifts. Diffraction phase microscopy equipped with various wavelengths of light source is used to record wavelength-dependent phase images. We first perform dispersion measurements on pure solutions of single molecular species present in the cells, such as albumin and hemoglobin (Hb). With this prior calibration of molecular specific dispersion, we demonstrate the

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
11
Article|188 citations·2013
Subwavelength light focusing using random nanoparticles
Jung‐Hoon Park, Chunghyun Park, Hyeonseung Yu, Jimin Park, Seungyong Han, Jonghwa Shin, Seung Hwan Ko, Ki Tae Nam, Yong‐Hoon Cho, YongKeun Park, Yong‐Hoon Cho, YongKeun Park
SJR Q1Nature Photonics
Acoustics and UltrasonicsPhysics and Astronomy
12
Article|188 citations·2017
Holographic deep learning for rapid optical screening of anthrax spores
YoungJu Jo, Sang-Jin Park, JaeHwang Jung, Jonghee Yoon, Hosung Joo, Minhyeok Kim, Suk‐Jo Kang, Myung Chul Choi, Sang Yup Lee, YongKeun Park
SJR Q1Science AdvancesOA

, without any modification. We believe that our strategy will make holographic microscopy more accessible to medical doctors and biomedical scientists for easy, rapid, and accurate point-of-care diagnosis of pathogens.

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
13
Article|175 citations·2021
Intensity-based holographic imaging via space-domain Kramers–Kronig relations
YoonSeok Baek, YongKeun Park
SJR Q1Nature Photonics
Atomic and Molecular Physics, and OpticsPhysics and Astronomy
14
Article|154 citations·2009
Speckle-field digital holographic microscopy
YongKeun Park, Wonshik Choi, Zahid Yaqoob, Ramachandra R. Dasari, Kamran Badizadegan, Michael S. Feld
SJR Q1Optics ExpressOA

The use of coherent light in conventional holographic phase microscopy (HPM) poses three major drawbacks: poor spatial resolution, weak depth sectioning, and fixed pattern noise due to unwanted diffraction. Here, we report a technique which can overcome these drawbacks, but maintains the advantage of phase microscopy - high contrast live cell imaging and 3D imaging. A speckle beam of a complex spatial pattern is used for illumination to reduce fixed pattern noise and to improve optical sectionin

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
15
Article|150 citations·2019
Ultrathin wide-angle large-area digital 3D holographic display using a non-periodic photon sieve
Jongchan Park, KyeoReh Lee, YongKeun Park
SJR Q1Nature CommunicationsOA

Holographic displays can provide a 3D visual experience to multiple users without requiring special glasses. By precisely tailoring light fields, holographic displays could resemble realistic 3D scenes with full motion parallax and continuous depth cues. However, available holographic displays are unable to generate such scenes given practical limitations in wavefront modulation. In fact, the limited diffraction angle and small number of pixels of current wavefront modulators derive into a 3D sc

Media TechnologyEngineering

Research Areas

Atomic and Molecular Physics, and OpticsAcoustics and UltrasonicsBiophysicsMolecular BiologyBiomedical EngineeringPhysiology

Dive deeper into YongKeun Park's research on Nubint

Open this lab's papers in the app to read with AI, summarize, and cite in your writing.