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Young Chul Jun

Ulsan National Institute of Science and Technology · 工学

研究室紹介

Professor Young Chul Jun's research lab specializes in nanophotonics, plasmonics, and reconfigurable metamaterials, focusing on the design and integration of tunable optical devices for on-chip applications. The lab explores electrically and optically tunable strong light-matter interactions using doped semiconductors, 2D/3D photonic waveguides, and metamaterials, with applications in nanoscale light sources, integrated photonic circuits, and active plasmonic devices. A key innovation lies in leveraging 3D and 4D printing techniques to fabricate complex, reconfigurable photonic structures with dynamic functionalities. The lab also investigates spontaneous emission control and waveguide coupling for enhanced light-matter interaction in compact, chip-integrated platforms.

metamaterialsplasmonics4D printingoptical tuningnanophotonics

Research Overview

Papers
102
Total Citations
7,334
Papers (5y)
19
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
19total
2022
2023
2024
2025
2026
Citations per year (5y)
217total
20222023202420252026

Selected Papers

15
1
Article|212 citations·2013
Epsilon-Near-Zero Strong Coupling in Metamaterial-Semiconductor Hybrid Structures
Young Chul Jun, J. L. Reno, Troy Ribaudo, Eric A. Shaner, Jean‐Jacques Greffet, Simon Vassant, François Marquier, M. B. Sinclair, Igal Brener
SJR Q1Nano Letters

We present a new type of electrically tunable strong coupling between planar metamaterials and epsilon-near-zero modes that exist in a doped semiconductor nanolayer. The use of doped semiconductors makes this strong coupling tunable over a wide range of wavelengths through the use of different doping densities. We also modulate this coupling by depleting the doped semiconductor layer electrically. Our hybrid approach incorporates strong optical interactions into a highly tunable, integrated devi

Electronic, Optical and Magnetic MaterialsMaterials Science
2
Article|200 citations·2011
Plasmonic beaming and active control over fluorescent emission
Young Chul Jun, Kevin Huang, Mark L. Brongersma
SJR Q1Nature CommunicationsOA
Biomedical EngineeringEngineering
3
Article|175 citations·2008
Nonresonant enhancement of spontaneous emission in metal-dielectric-metal plasmon waveguide structures
Young Chul Jun, Rohan D. Kekatpure, Justin S. White, Mark L. Brongersma
SJR Q1Physical Review BOA

We theoretically investigate the spontaneous emission process of an optical, dipolar emitter in metal-dielectric-metal slab and slot waveguide structures. We find that both structures exhibit strong emission enhancements at nonresonant conditions, due to the tight confinement of modes between two metallic plates. The large enhancement of surface plasmon-polariton excitation enables dipole emission to be preferentially coupled into plasmon waveguide modes. These structures find applications in cr

Biomedical EngineeringEngineering
4
Article|110 citations·2020
Multicolor 4D printing of shape-memory polymers for light-induced selective heating and remote actuation
Hoon Yeub Jeong, Byung Hoon Woo, Namhun Kim, Young Chul Jun
SJR Q1Scientific ReportsOA

Four-dimensional (4D) printing can add active and responsive functions to three-dimensional (3D) printed objects in response to various external stimuli. Light, among others, has a unique advantage of remotely controlling structural changes to obtain predesigned shapes. In this study, we demonstrate multicolor 4D printing of shape-memory polymers (SMPs). Using color-dependent selective light absorption and heating in multicolor SMP composites, we realize remote actuation with light illumination.

Mechanical EngineeringEngineering
5
Article|94 citations·2020
3D and 4D printing for optics and metaphotonics
Hoon Yeub Jeong, Eunsongyi Lee, Soo‐Chan An, Yeonsoo Lim, Young Chul Jun
SJR Q1NanophotonicsOA

Abstract Three‐dimensional (3D) printing is a new paradigm in customized manufacturing and allows the fabrication of complex optical components and metaphotonic structures that are difficult to realize via traditional methods. Conventional lithography techniques are usually limited to planar patterning, but 3D printing can allow the fabrication and integration of complex shapes or multiple parts along the out‐of‐plane direction. Additionally, 3D printing can allow printing on curved surfaces. Fo

Electrical and Electronic EngineeringEngineering
6
Article|90 citations·2009
Broadband enhancement of light emission in silicon slot waveguides
Young Chul Jun, Ryan M. Briggs, Harry A. Atwater, Mark L. Brongersma
SJR Q1Optics ExpressOA

We investigate the light emission properties of electrical dipole emitters inside 2-dimensional (2D) and 3-dimensional (3D) silicon slot waveguides and evaluate the spontaneous emission enhancement (F(p)) and waveguide coupling ratio (beta). Under realistic conditions, we find that greater than 10-fold enhancement in F(p) can be achieved, together with a beta as large as 0.95. In contrast to the case of high Q optical resonators, such performance enhancements are obtained over a broad wavelength

Electrical and Electronic EngineeringEngineering
7
Article|87 citations·2018
Multistable Thermal Actuators Via Multimaterial 4D Printing
Hoon Yeub Jeong, Eunseo Lee, Sangho Ha, Namhun Kim, Young Chul Jun
SJR Q1Advanced Materials Technologies

Abstract 3D printing of smart materials, called “four‐dimensional” (4D) printing, adds active, responsive functions to 3D‐printed structures. Shape memory polymers (SMPs) can be employed as an active material in 4D printing, and this could be useful for a wide range of potential applications. New design for 4D printing is presented here by introducing SMPs into rotational multistable structures. Two different digital SMPs are employed to enable large‐angle, thermal actuation in a controlled mann

Mechanical EngineeringEngineering
8
Article|81 citations·2019
3D printing of twisting and rotational bistable structures with tuning elements
Hoon Yeub Jeong, Soo‐Chan An, In Cheol Seo, Eunseo Lee, Sangho Ha, Namhun Kim, Young Chul Jun
SJR Q1Scientific ReportsOA

Three-dimensional (3D) printing is ideal for the fabrication of various customized 3D components with fine details and material-design complexities. However, most components fabricated so far have been static structures with fixed shapes and functions. Here we introduce bistability to 3D printing to realize highly-controlled, reconfigurable structures. Particularly, we demonstrate 3D printing of twisting and rotational bistable structures. To this end, we have introduced special joints to constr

Mechanical EngineeringEngineering
9
Article|71 citations·2012
Active tuning of mid-infrared metamaterials by electrical control of carrier densities
Young Chul Jun, Edward Gonzales, J. L. Reno, Eric A. Shaner, Alon Gabbay, Igal Brener
SJR Q1Optics ExpressOA

We demonstrate electrically-controlled active tuning of mid-infrared metamaterial resonances using depletion-type devices. The depletion width in an n-doped GaAs epilayer changes with an electric bias, inducing a change of the permittivity of the substrate and leading to frequency tuning of the resonance. We first present our detailed theoretical analysis and then explain experimental data of bias-dependent metamaterial transmission spectra. This electrical tuning is generally applicable to a va

Electronic, Optical and Magnetic MaterialsMaterials Science
10
Article|69 citations·2022
Maximally Chiral Emission via Chiral Quasibound States in the Continuum
Yeonsoo Lim, In Cheol Seo, Soo‐Chan An, Young-Gon Kim, Chaejin Park, Byung Hoon Woo, Seongheon Kim, Hyeong‐Ryeol Park, Young Chul Jun
SJR Q1Laser & Photonics Review

Abstract Although numerous natural materials exhibit chiral optical phenomena, they are typically very weak. Chiral nanophotonic structures can significantly enhance the chiroptical responses and provide unprecedented design flexibility. However, achieving extreme chirality that approaches the ultimate theoretical limit remains challenging. Here, chiral quasibound states in the continuum are realized in the visible range, and maximally chiral emission from a perovskite metasurface is demonstrate

Electronic, Optical and Magnetic MaterialsMaterials Science
11
Article|57 citations·2009
Strong Modification of Quantum Dot Spontaneous Emission via Gap Plasmon Coupling in Metal Nanoslits
Young Chul Jun, Ragip Pala, Mark L. Brongersma
SJR Q1The Journal of Physical Chemistry C

A metal−dielectric−metal (MDM) waveguide with a nanoscale gap supports highly confined surface plasmon−polariton modes, termed gap plasmons. The spontaneous emission of an emitter placed in such a metal nanogap is expected to be strongly modified due to coupling to gap plasmons. We investigate the light emission properties of semiconductor quantum dots (QD) in a metal nanoslit, which is a truncated MDM waveguide. More specifically, we measure both the lifetime and the state of polarization of th

Biomedical EngineeringEngineering
12
Article|49 citations·2021
Circularly Polarized Emission from Organic–Inorganic Hybrid Perovskites via Chiral Fano Resonances
In Cheol Seo, Yeonsoo Lim, Soo‐Chan An, Byung Hoon Woo, Seongheon Kim, Jung Geon Son, SeokJae Yoo, Q‐Han Park, Jin Young Kim, Young Chul Jun
SJR Q1ACS Nano

Organic-inorganic hybrid perovskites hold great potential for various optoelectronic devices with exceptional properties. Although the direct generation of circularly polarized emission from perovskites would enable various compact devices, achieving a large degree of circular polarization (DCP) at room temperature still remains challenging. Herein, we demonstrate that DCP can be strongly enhanced at the narrow mode position of chiral Fano resonances. In our design, a perovskite film is spin-coa

Electrical and Electronic EngineeringEngineering
13
Article|49 citations·2021
Topological Control of 2D Perovskite Emission in the Strong Coupling Regime
Seongheon Kim, Byung Hoon Woo, Soo‐Chan An, Yeonsoo Lim, In Cheol Seo, Dai‐Sik Kim, SeokJae Yoo, Q‐Han Park, Young Chul Jun
SJR Q1Nano Letters

Momentum space topology can be exploited to manipulate radiation in real space. Here we demonstrate topological control of 2D perovskite emission in the strong coupling regime via polaritonic bound states in the continuum (BICs). Topological polarization singularities (polarization vortices and circularly polarized eigenstates) are observed at room temperature by measuring the Stokes parameters of photoluminescence in momentum space. Particularly, in symmetry-broken structures, a very large degr

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
14
Article|41 citations·2018
Fourier‐plane investigation of plasmonic bound states in the continuum and molecular emission coupling
In Cheol Seo, Seongheon Kim, Byung Hoon Woo, Il‐Sug Chung, Young Chul Jun
SJR Q1NanophotonicsOA

Abstract Bound states in the continuum (BICs) or trapped modes can provide an important new avenue for strong light confinement via destructive interference. Dielectric photonic structures have been extensively studied for optical BICs. However, BICs in plasmonic nanostructures have not been explored much yet. Herein, we present a thorough experimental study of plasmonic BICs via Fourier‐plane spectroscopy and imaging. Optical mode dispersion in a metal grating covered by a dielectric layer is d

Biomedical EngineeringEngineering
15
Article|40 citations·2020
3D and 4D Printing of Multistable Structures
Hoon Yeub Jeong, Soo‐Chan An, Yeonsoo Lim, Min Jeong, Namhun Kim, Young Chul Jun
SJR Q2Applied SciencesOA

Three-dimensional (3D) printing is a new paradigm in customized manufacturing and allows the fabrication of complex structures that are difficult to realize with other conventional methods. Four-dimensional (4D) printing adds active, responsive functions to 3D-printed components, which can respond to various environmental stimuli. This review introduces recent ideas in 3D and 4D printing of mechanical multistable structures. Three-dimensional printing of multistable structures can enable highly

Mechanical EngineeringEngineering

Research Areas

Electronic, Optical and Magnetic MaterialsElectrical and Electronic EngineeringBiomedical EngineeringAtomic and Molecular Physics, and OpticsMechanical EngineeringMaterials Chemistry

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