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Wonjun Choi

Korea University · Physics and Astronomy

About the Lab

Professor Wonjun Choi's research lab specializes in nanophotonics, optical wave transport in disordered media, and integrated photonic-electronic systems. The lab investigates fundamental light-matter interactions, including eigenchannels in Anderson-localized systems, enhanced light extraction in LEDs, and plasmonic switching for on-chip optical interconnects. A key focus is developing novel imaging and sensing platforms—such as flexible, lensless fiber endoscopes and holographic imaging systems—enabling high-resolution, label-free biomedical diagnostics. The lab combines advanced numerical simulations (e.g., FDTD) with experimental validation to bridge theoretical insights with practical photonic technologies.

nanophotonicsAnderson localizationplasmonic switchinglensless endoscopyoptical imaging

Research Overview

Papers
68
Total Citations
2,307
Papers (5y)
16
Primary Field
Physics and Astronomy

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
16total
2021
2022
2023
2024
2025
Citations per year (5y)
105total
20212022202320242025

Selected Papers

15
1
Review|399 citations·2020
Deep optical imaging within complex scattering media
Seokchan Yoon, Moonseok Kim, Mooseok Jang, Youngwoon Choi, Wonjun Choi, Sungsam Kang, Wonshik Choi
SJR Q1Nature Reviews Physics
Biomedical EngineeringEngineering
2
Article|206 citations·2015
Imaging deep within a scattering medium using collective accumulation of single-scattered waves
Sungsam Kang, Seungwon Jeong, Wonjun Choi, Hakseok Ko, Tae-Seok Yang, Jang Ho Joo, Jae‐Seung Lee, Yong‐Sik Lim, Q‐Han Park, Wonshik Choi
SJR Q1Nature Photonics
Acoustics and UltrasonicsPhysics and Astronomy
3
Article|141 citations·2011
Transmission eigenchannels in a disordered medium
Wonjun Choi, Allard P. Mosk, Q‐Han Park, Wonshik Choi
SJR Q1Physical Review B

While the distribution of the transmission eigenvalues of a disordered medium is well understood in the context of random-matrix theory, the properties of eigenchannels have remained unexplored. In this study, we have solved electromagnetic wave propagation through a disordered medium using the finite-difference time-domain method, we numerically constructed a transmission matrix in an optical regime, and we obtained its eigenchannels as well as its eigenvalues. We observe that open eigenchannel

Acoustics and UltrasonicsPhysics and Astronomy
4
Article|61 citations·2022
Flexible-type ultrathin holographic endoscope for microscopic imaging of unstained biological tissues
Wonjun Choi, Munkyu Kang, Jin Hee Hong, Ori Katz, Byunghak Lee, Guang Hoon Kim, Youngwoon Choi, Wonshik Choi
SJR Q1Nature CommunicationsOA

Ultrathin lensless fibre endoscopes offer minimally invasive investigation, but they mostly operate as a rigid type due to the need for prior calibration of a fibre probe. Furthermore, most implementations work in fluorescence mode rather than label-free imaging mode, making them unsuitable for general medical diagnosis. Herein, we report a fully flexible ultrathin fibre endoscope taking 3D holographic images of unstained tissues with 0.85-μm spatial resolution. Using a bare fibre bundle as thin

Acoustics and UltrasonicsPhysics and Astronomy
5
Article|30 citations·2006
FDTD Simulation for Light Extraction in a GaN-Based LED
최원준, 박규환, Cheolsoo Sone, Dongho Kim, 전헌수, Yongjo Park

It is well known that light extraction from an LED can be enhanced by roughening the surface of the LED on a wavelength scale. However, the surface structure for optimal extraction and the underlying physical mechanism for increased emission are still largely unknown. In this work, we present both numerical and experimental studies on light extraction in GaN-based LEDs with square lattice photonic crystal patterns by using large-scale, three-dimensional FDTD (finite-difference time-domain) simul

6
Article|22 citations·2017
Control of randomly scattered surface plasmon polaritons for multiple-input and multiple-output plasmonic switching devices
Wonjun Choi, Yonghyeon Jo, Joonmo Ahn, Eunsung Seo, Q‐Han Park, Young Min Jhon, Wonshik Choi, Wonshik Choi, Wonshik Choi
SJR Q1Nature CommunicationsOA

Merging multiple microprocessors with high-speed optical networks has been considered a promising strategy for the improvement of overall computation power. However, the loss of the optical communication bandwidth is inevitable when interfacing between optical and electronic components. Here we present an on-chip plasmonic switching device consisting of a two-dimensional (2D) disordered array of nanoholes on a thin metal film that can provide multiple-input and multiple-output channels for trans

Biomedical EngineeringEngineering
7
Article|19 citations·2012
Perfect transmission through Anderson localized systems mediated by a cluster of localized modes
Wonjun Choi, Q‐Han Park, Wonshik Choi
SJR Q1Optics ExpressOA

In a strongly scattering medium where Anderson localization takes place, constructive interference of local non-propagating waves dominate over the incoherent addition of propagating waves. This results in the disappearance of propagating waves within the medium, which significantly attenuates energy transmission. In this numerical study performed in the optical regime, we systematically found resonance modes, called eigenchannels, of a 2-D Anderson localized system that allow for the near-perfe

Acoustics and UltrasonicsPhysics and Astronomy
8
Article|19 citations·2017
Mixed-order phase transition in a two-step contagion model with a single infectious seed
Wonjun Choi, Deokjae Lee, B. Kahng
SJR Q2Physical review. EOA

Percolation is known as one of the most robust continuous transitions, because its occupation rule is intrinsically local. As one of the ways to break the robustness, occupation is allowed to more than one species of particles and they occupy cooperatively. This generalized percolation model undergoes a discontinuous transition. Here we investigate an epidemic model with two contagion steps and characterize its phase transition analytically and numerically. We find that even though the order par

Public Health, Environmental and Occupational HealthMedicine
9
Article|17 citations·2014
Implementing transmission eigenchannels of disordered media by a binary-control digital micromirror device
Donggyu Kim, Wonjun Choi, Moonseok Kim, Jung-Ho Moon, Keumyoung Seo, Sanghyun Ju, Wonshik Choi
SJR Q2Optics Communications
Acoustics and UltrasonicsPhysics and Astronomy
10
Article|16 citations·2015
Preferential coupling of an incident wave to reflection eigenchannels of disordered media
Wonjun Choi, Moonseok Kim, Donggyu Kim, Changhyeong Yoon, Christopher Fang‐Yen, Q‐Han Park, Wonshik Choi
SJR Q1Scientific ReportsOA

Light waves incident to a highly scattering medium are incapable of penetrating deep into the medium due to the multiple scattering process. This poses a fundamental limitation to optically imaging, sensing, and manipulating targets embedded in opaque scattering layers such as biological tissues. One strategy for mitigating the shallow wave penetration is to exploit eigenchannels with anomalously high transmittance existing in any scattering medium. However, finding such eigenchannels has been a

Acoustics and UltrasonicsPhysics and Astronomy
11
Article|13 citations·2017
Absence of Anderson localization in certain random lattices
Wonjun Choi, Cheng Yin, Ian R. Hooper, William L. Barnes, Jacopo Bertolotti
SJR Q2Physical review. EOA

We report on the transition between an Anderson localized regime and a conductive regime in a one-dimensional microwave scattering system with correlated disorder. We show experimentally that when long-range correlations are introduced, in the form of a power-law spectral density with power larger than 2, the localization length becomes much bigger than the sample size and the transmission peaks typical of an Anderson localized system merge into a pass band. As other forms of long-range correlat

Acoustics and UltrasonicsPhysics and Astronomy
12
Article|13 citations·2017
Critical behavior of a two-step contagion model with multiple seeds
Wonjun Choi, Deokjae Lee, B. Kahng
SJR Q2Physical review. EOA

A two-step contagion model with a single seed serves as a cornerstone for understanding the critical behaviors and underlying mechanism of discontinuous percolation transitions induced by cascade dynamics. When the contagion spreads from a single seed, a cluster of infected and recovered nodes grows without any cluster merging process. However, when the contagion starts from multiple seeds of O(N) where N is the system size, a node weakened by a seed can be infected more easily when it is in con

Statistical and Nonlinear PhysicsPhysics and Astronomy
13
Article|8 citations·2018
Two golden times in two-step contagion models: A nonlinear map approach
Wonjun Choi, Deok‐Sun Lee, János Kertész, B. Kahng
SJR Q2Physical review. EOA

The two-step contagion model is a simple toy model for understanding pandemic outbreaks that occur in the real world. The model takes into account that a susceptible person either gets immediately infected or weakened when getting into contact with an infectious one. As the number of weakened people increases, they eventually can become infected in a short time period and a pandemic outbreak occurs. The time required to reach such a pandemic outbreak allows for intervention and is often called g

Statistical and Nonlinear PhysicsPhysics and Astronomy
14
Preprint|5 citations·2020
Fourier holographic endoscopy for label-free imaging through a narrow and curved passage
Wonjun Choi, Munkyu Kang, Jin Hee Hong, Ori Katz, Youngwoon Choi, Wonshik Choi
arXiv (Cornell University)OA

Ultrathin lensless fibre endoscopes offer minimally invasive investigation, but they mostly operate as a rigid type due to the need for prior calibration of a fibre probe. Furthermore, most implementations work in fluorescence mode rather than label-free imaging mode, making them unsuitable for medicine and industry. Herein, we report a fully flexible ultrathin fibre endoscope taking 3D holographic images of unstained tissues with 0.87-{\\mu}m spatial resolution. Using a bare fibre bundle as thi

Biomedical EngineeringEngineering
15
Article|5 citations·2017
Maximizing energy coupling to complex plasmonic devices by injecting light into eigenchannels
Yonghyeon Jo, Wonjun Choi, Eunsung Seo, Junmo Ahn, Q‐Han Park, Young Min Jhon, Wonshik Choi, Wonshik Choi, Wonshik Choi
SJR Q1Scientific ReportsOA

Surface plasmon polaritons have attracted broad attention in the optoelectronics field due to their ability to merge nanoscale electronics with high-speed optical communication. As the complexity of optoelectronic devices increases to meet various needs, this integration has been hampered by the low coupling efficiency of light to plasmonic modes. Here we present a method to maximize the coupling of far-field optical waves to plasmonic waves for arbitrarily complex devices. The method consists o

Biomedical EngineeringEngineering

Research Areas

Acoustics and UltrasonicsBiomedical EngineeringStatistical and Nonlinear PhysicsElectronic, Optical and Magnetic MaterialsAtomic and Molecular Physics, and OpticsRadiation

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