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Jongwon Lee

Ulsan National Institute of Science and Technology · 工学

研究室紹介

Professor Jongwon Lee's research lab specializes in nanophotonics, metamaterials, and advanced optoelectronic devices, with a focus on designing ultrathin, tunable, and nonlinear metasurfaces for mid-infrared applications. The lab pioneers electrically tunable metasurfaces with ultrafast response and giant nonlinear optical effects, enabling breakthroughs in flat optics, sensing, and high-capacity communication. Key research directions include plasmonic and polaritonic engineering, quantum-confined Stark effect in semiconductor heterostructures, and the development of next-generation photonic platforms for sensing and energy-efficient optical systems. The lab also explores innovative materials and architectures for lithium metal batteries, integrating porous carbon frameworks for stable and reversible lithium storage.

metasurfacesnonlinear opticsmid-infrared photonicstunable plasmonicsenergy storage

Research Overview

Papers
109
Total Citations
2,644
Papers (5y)
37
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
37total
2022
2023
2024
2025
2026
Citations per year (5y)
152total
20222023202420252026

Selected Papers

15
1
Article|667 citations·2014
Giant nonlinear response from plasmonic metasurfaces coupled to intersubband transitions
Jongwon Lee, Mykhailo Tymchenko, Christos Argyropoulos, Pai‐Yen Chen, Feng Lu, Frederic Demmerle, Gerhard Boehm, Markus‐Christian Amann, Andrea Alù, Mikhail A. Belkin
SJR Q1Nature
Electronic, Optical and Magnetic MaterialsMaterials Science
2
Article|112 citations·2014
Ultrafast Electrically Tunable Polaritonic Metasurfaces
Jongwon Lee, Seungyong Jung, Pai‐Yen Chen, Feng Lu, Frederic Demmerle, Gerhard Boehm, Markus‐Christian Amann, Andrea Alù, Mikhail A. Belkin
SJR Q1Advanced Optical Materials

Electrically tunable mid‐infrared metasurfaces with nanosecond response time and broad tuning range are reported. Electrical tuning is achieved by employing strong polaritonic coupling of electromagnetic modes in metallic nanoresonators with voltage‐tunable inter‐subband transitions in semiconductor heterostructures, tailored for a giant quantum‐confined Stark effect. Experimentally, a 220‐nm‐thick multi‐quantum‐well semiconductor layer is sandwiched between a ground plane and a metal layer patt

Electronic, Optical and Magnetic MaterialsMaterials Science
3
Article|110 citations·2016
Ultrathin Second‐Harmonic Metasurfaces with Record‐High Nonlinear Optical Response
Jongwon Lee, Nishant Nookala, J. S. Gómez‐Díaz, Mykhailo Tymchenko, Frederic Demmerle, Gerhard Boehm, Markus‐Christian Amann, Andrea Alù, Mikhail A. Belkin
SJR Q1Advanced Optical Materials

Ultrathin metasurfaces with record-high nonlinear optical response of 1.2 × 106 pm V−1 for second harmonic generation are experimentally demonstrated in the mid-infrared spectral range. A second harmonic power conversion efficiency of 0.075% is achieved in a 400-nm-thick (λ/25) metasurface at a pump intensity of only 15 kW cm−2. As a service to our authors and readers, this journal provides supporting information supplied by the authors. Such materials are peer reviewed and may be re-organized f

Electronic, Optical and Magnetic MaterialsMaterials Science
4
Article|104 citations·2020
Functionality of Dual‐Phase Lithium Storage in a Porous Carbon Host for Lithium‐Metal Anode
Junyoung Kim, Junyoung Kim, Jae Wook Lee, Jae Wook Lee, Jonghyeok Yun, Seung Hyun Choi, Sang A Han, Janghyuk Moon, Jung Ho Kim, Jung Ho Kim, Jongwon Lee, Jongwon Lee
SJR Q1Advanced Functional Materials

Abstract Lithium (Li) metal is regarded as the most attractive anode material for high‐energy Li batteries, but it faces unavoidable challenges—uncontrollable dendritic growth of Li and severe volume changes during Li plating and stripping. Herein, a porous carbon framework (PCF) derived from a metal–organic framework (MOF) is proposed as a dual‐phase Li storage material that enables efficient and reversible Li storage via lithiation and metallization processes. Li is electrochemically stored in

Electrical and Electronic EngineeringEngineering
5
Article|84 citations·2021
Electrically tunable nonlinear polaritonic metasurface
Jaeyeon Yu, Seongjin Park, Inyong Hwang, Daeik Kim, Frederic Demmerle, Gerhard Boehm, Markus‐Christian Amann, Mikhail A. Belkin, Jongwon Lee
SJR Q1Nature Photonics
Biomedical EngineeringEngineering
6
Article|66 citations·2020
Giant Nonlinear Circular Dichroism from Intersubband Polaritonic Metasurfaces
Daeik Kim, Jaeyeon Yu, Inyong Hwang, Seongjin Park, Frederic Demmerle, Gerhard Boehm, Markus‐Christian Amann, Mikhail A. Belkin, Jongwon Lee
SJR Q1Nano Letters

Nonlinear metasurfaces are advancing into a new paradigm of "flat nonlinear optics" owing to the ability to engineer local nonlinear responses in subwavelength-thin films. Recently, attempts have been made to expand the design space of nonlinear metasurfaces through nonlinear chiral responses. However, the development of metasurfaces that display both giant nonlinear circular dichroism and significantly large nonlinear optical response is still an unresolved challenge. Herein, we propose a metho

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
7
Article|41 citations·2022
E‐Band Metasurface‐Based Orbital Angular Momentum Multiplexing and Demultiplexing
Hyeongju Chung, Daeik Kim, EunMi Choi, Jongwon Lee
SJR Q1Laser & Photonics Review

Abstract Orbital angular momentum (OAM) has received considerable attention regarding high‐capacity communication owing to its spatial orthogonality. However, it is still challenging to build a compact communication system that can generate multiple coaxial OAM beams and receive information from each. In this work, OAM multiplexing and demultiplexing at the E‐band frequency using a single metasurface structure is proposed and experimentally demonstrated. For OAM multiplexing, the metasurface use

Electronic, Optical and Magnetic MaterialsMaterials Science
8
Article|38 citations·2021
Ultrasensitive Molecule Detection Based on Infrared Metamaterial Absorber with Vertical Nanogap
Inyong Hwang, Mingyun Kim, Jaeyeon Yu, Jihye Lee, Jun‐Hyuk Choi, Su A Park, Won Seok Chang, Jongwon Lee, Joo‐Yun Jung
SJR Q1Small MethodsOA

Surface-enhanced infrared absorption (SEIRA) spectroscopy is a powerful methodology for sensing and identifying small quantities of analyte molecules via coupling between molecular vibrations and an enhanced near-field induced in engineered structures. A metamaterial absorber (MA) is proposed as an efficient SEIRA platform; however, its efficiency is limited because it requires the appropriate insulator thickness and has a limited accessible area for sensing. SEIRA spectroscopy is proposed using

Electronic, Optical and Magnetic MaterialsMaterials Science
9
Article|36 citations·2019
Third‐Harmonic Generation from Plasmonic Metasurfaces Coupled to Intersubband Transitions
Jaeyeon Yu, Seong-Jin Park, Inyong Hwang, Daeik Kim, Joo‐Yun Jung, Jongwon Lee
SJR Q1Advanced Optical Materials

Abstract Nonlinear responses in metasurfaces have shown great promise for various applications, such as nonlinear holography, spectroscopy, and novel nonlinear light sources. Metasurfaces that produce nonlinear responses have the advantage of greatly relaxed phase‐matching conditions, which can simplify nonlinear optical systems. However, the practical use of nonlinear metasurfaces with an accessible optical pump source requires giant nonlinear responses. A multi‐quantum‐well‐loaded nonlinear me

Electronic, Optical and Magnetic MaterialsMaterials Science
10
Article|33 citations·2020
Generation of E-band metasurface-based vortex beam with reduced divergence angle
Hyeongju Chung, Daeik Kim, Ashwini Sawant, Ingeun Lee, EunMi Choi, Jongwon Lee
SJR Q1Scientific ReportsOA

Vortex beams carrying orbital angular momentum (OAM) have attracted considerable attention for the development of high-capacity wireless communication systems due to their infinite sets of orthogonal modes. However, the practical applications of Laguerre-Gaussian type vortex beams are limited due to the fact that the divergence angle increases as the order of the OAM mode increases. In this work, we present metasurfaces that generate vortex beams carrying OAM modes with reduced divergence angles

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
11
Article|23 citations·2023
Electrical Phase Modulation Based on Mid‐Infrared Intersubband Polaritonic Metasurfaces
Hyeongju Chung, Inyong Hwang, Jaeyeon Yu, Gerhard Boehm, Mikhail A. Belkin, Jongwon Lee
SJR Q1Advanced ScienceOA

Electrically reconfigurable metasurfaces that overcome the static limitations in controlling the fundamental properties of scattered light are opening new avenues for functional flat optics. This work proposes and experimentally demonstrates electrically phase-tunable mid-infrared metasurfaces based on the polaritonic coupling of Stark-tunable intersubband transitions in semiconductor heterostructures and electromagnetic modes in plasmonic nanoresonators. In the applied voltage range of -3 to +3

Electronic, Optical and Magnetic MaterialsMaterials Science
12
Article|23 citations·2019
Fano Metamaterials on Nanopedestals for Plasmon-Enhanced Infrared Spectroscopy
Jung Yongseok, Inyong Hwang, Jaeyeon Yu, Jihye Lee, Jun‐Hyuk Choi, Jun‐Ho Jeong, Joo‐Yun Jung, Jongwon Lee, Jongwon Lee, Jongwon Lee
SJR Q1Scientific ReportsOA

Abstract We report a sensing platform for surface-enhanced infrared absorption (SEIRA) spectroscopy, based on Fano metamaterials (FMMs) on dielectric nanopedestals. FMMs consist of two parallel gold (Au) nanorod antennas, with a small horizontal coupler attached to one of the nanorod antenna. When placed on SiO 2 dielectric nanopedestals, which exhibit strong field enhancements caused by the interference between subradiant and superradiant plasmonic resonances, they provide the highly enhanced E

Biomedical EngineeringEngineering
13
Article|21 citations·2024
Electrically tunable third-harmonic generation using intersubband polaritonic metasurfaces
Seongjin Park, Jaeyeon Yu, Gerhard Boehm, Mikhail A. Belkin, Jongwon Lee
SJR Q1Light Science & ApplicationsOA

Abstract Nonlinear intersubband polaritonic metasurfaces, which integrate giant nonlinear responses derived from intersubband transitions of multiple quantum wells (MQWs) with plasmonic nanoresonators, not only facilitate efficient frequency conversion at pump intensities on the order of few tens of kW cm -2 but also enable electrical modulation of nonlinear responses at the individual meta-atom level and dynamic beam manipulation. The electrical modulation characteristics of the magnitude and p

Electronic, Optical and Magnetic MaterialsMaterials Science
14
Article|19 citations·2021
Dependence of the effective surface tension of liquid phase eutectic gallium indium on wrinkles of the surface oxide
Jongwon Lee, Sangyun Jung, Wonjung Kim
SJR Q1Extreme Mechanics Letters
Biomedical EngineeringEngineering
15
Article|19 citations·2020
Spin‐Controlled Nonlinear Harmonic Generations from Plasmonic Metasurfaces Coupled to Intersubband Transitions
Daeik Kim, Hyeongju Chung, Jaeyeon Yu, Inyong Hwang, Seong-Jin Park, Frederic Demmerle, Gerhard Boehm, Markus‐Christian Amann, Mikhail A. Belkin, Joo‐Yun Jung, Jongwon Lee
SJR Q1Advanced Optical Materials

Abstract Metasurfaces that generate nonlinear optical responses provide new degrees of freedom for applications such as nonlinear holography, wave mixing, and new frequencies generation. To extend the utility of flat nonlinear optics, metasurfaces providing both giant nonlinear response for efficient frequency mixing in subwavelength films and a single‐beam output with a local wavefront control need to be developed. Metasurfaces with giant nonlinear response have recently been realized using the

Electronic, Optical and Magnetic MaterialsMaterials Science

Research Areas

Electronic, Optical and Magnetic MaterialsBiomedical EngineeringElectrical and Electronic EngineeringAtomic and Molecular Physics, and OpticsEnvironmental ChemistryNuclear and High Energy Physics

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