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Choi Suk-Won

Kyung Hee University · Materials Science

About the Lab

Professor Choi Suk-Won's research lab specializes in advanced liquid crystal science, focusing on chiral and blue phase liquid crystals, photoresponsive materials, and their electro-optical and photonic applications. The lab investigates the interplay between molecular design, material parameters (such as dielectric anisotropy, refractive index anisotropy, and elastic constants), and macroscopic properties like Kerr effect, thermal stability, and circularly polarized light response. A key research direction involves using circularly polarized light to induce and control chirality in soft materials, enabling dynamic control of helical superstructures and photonic bandgaps. The lab also explores functional materials for tunable lasing and next-generation photonic devices.

blue phasechiral liquid crystalscircularly polarized lightphotonic bandgapelectro-optic properties

Research Overview

Papers
175
Total Citations
2,759
Papers (5y)
34
Primary Field
Materials Science

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
34total
2021
2022
2023
2024
2025
Citations per year (5y)
123total
20212022202320242025

Selected Papers

15
1
Article|118 citations·2008
Optically isotropic-nanostructured liquid crystal composite with high Kerr constant
Suk‐Won Choi, Shin-ichi Yamamoto, Yasuhiro Haseba, Hiroki Higuchi, Hirotsugu Kikuchi
SJR Q1Applied Physics Letters

The relationship between material parameters of host nematic liquid crystals (LCs) and Kerr constant of their nanostructured chiral LC composites was investigated. We made certain that the Kerr constant of nanostrutured chiral LC composites was closely related to the parameters of their host LCs, such as value of the difference of refractive index (Δn), the dielectric anisotropy (Δε), and bend to splay elastic constant ratio (K33∕K11).

Electronic, Optical and Magnetic MaterialsMaterials Science
2
Article|114 citations·2006
Circular‐Polarization‐Induced Enantiomeric Excess in Liquid Crystals of an Achiral, Bent‐Shaped Mesogen
Suk‐Won Choi, Tatsuya Izumi, Yusuke Hoshino, Yoichi Takanishi, Ken Ishikawa, Junji Watanabe, Hideo Takezoe
SJR Q1Angewandte Chemie International Edition

Imperative irradiation: A large enantiomeric excess in a liquid-crystal phase can be induced by circularly polarized light (CPL) as an external stimulus, and an imbalance in the two chiral domains becomes remarkable in the BX phase (see pictures), which is similar to the B4 phase made up by classical bent-core mesogens.

Electronic, Optical and Magnetic MaterialsMaterials Science
3
Article|98 citations·2010
Liquid crystalline blue phase I observed for a bent-core molecule and its electro-optical performance
Mongryong Lee, Sung-Taek Hur, Hiroki Higuchi, Kigook Song, Suk‐Won Choi, Hirotsugu Kikuchi
Journal of Materials Chemistry

We investigated the liquid crystalline blue phase I (BP I) observed for a nematogenic achiral bent-core molecule doped with a small percentage of a chiral additive with a high twisting power. We also observed the electro-optical performance of BP I by incorporating in-plane electric field geometry.

Electronic, Optical and Magnetic MaterialsMaterials Science
4
Article|95 citations·2013
Liquid‐Crystalline Blue Phase Laser with Widely Tunable Wavelength
Sung‐Taek Hur, Bo Ram Lee, Min‐Jun Gim, Kyung‐Won Park, Myoung Hoon Song, Suk‐Won Choi
SJR Q1Advanced Materials

A lasing peak shift of more than 100 nm is realized due to the large shift of a photonic bandgap of a liquid-crystalline blue phase.

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
5
Article|93 citations·2007
Photoinduced chirality in azobenzene-containing polymer systems
Suk‐Won Choi, Susumu Kawauchi, Na Young Ha, Hideo Takezoe
SJR Q2Physical Chemistry Chemical Physics

In this article, we will review the phenomena on circularly-polarized-light (CPL)-induced chirality in polymeric systems with photochromophores in their side-chain or main-chain. In the side-chain polymeric systems, the photoinduced chirality arises from superstructural chirality, i.e., helix structure, via aggregating of achiral azobenzene molecules in side chains. On the other hand, in the main-chain polymeric system, the macroscopically induced chirality can originate from individual chiralit

Electronic, Optical and Magnetic MaterialsMaterials Science
6
Article|79 citations·2011
Investigation for correlation between elastic constant and thermal stability of liquid crystalline blue phase I
Sung‐Taek Hur, Min‐Jun Gim, Hyun-Jong Yoo, Suk‐Won Choi, Hideo Takezoe
SJR Q2Soft Matter

We investigated the relationship between the elastic constants of host nematic liquid crystals (NLCs) and the thermal stability of their liquid crystalline blue phase I (BPI). By adding bent-core molecules to a conventional NLC, we could gradually increase (decrease) the elastic constant K11 (K33). We confirmed experimentally that the thermal stability of BPI strongly depends on the ratio of the elastic constants K11 and K33 of the host NLCs; the stability increases with decreasing K33/K11 parti

Electronic, Optical and Magnetic MaterialsMaterials Science
7
Article|59 citations·2015
A well-aligned simple cubic blue phase for a liquid crystal laser
Ki-Beom Kim, Sung‐Taek Hur, Sunhwan Kim, Seong-Yong Jo, Bo Ram Lee, Myoung Hoon Song, Suk‐Won Choi
SJR Q1Journal of Materials Chemistry COA

A well-aligned dye-doped blue phase II laser shows tunable emission wavelength and much lower emission threshold energy.

Electronic, Optical and Magnetic MaterialsMaterials Science
8
Article|59 citations·2017
Polymer Stabilization of Liquid-Crystal Blue Phase II toward Photonic Crystals
Seong-Yong Jo, Sung‐Wook Jeon, Byeong‐Cheon Kim, Jaehyun Bae, Fumito Araoka, Suk‐Won Choi
SJR Q1ACS Applied Materials & Interfaces

The temperature ranges where a pure simple-cubic blue phase (BPII) emerges are quite narrow compared to the body-centered-cubic BP (BPI) such that the polymer stabilization of BPII is much more difficult. Hence, a polymer-stabilized BPII possessing a wide temperature range has been scarcely reported. Here, we fabricate a polymer-stabilized BPII over a temperature range of 50 °C including room temperature. The fabricated polymer-stabilized BPII is confirmed via polarized optical microscopy, Bragg

Electronic, Optical and Magnetic MaterialsMaterials Science
9
Article|52 citations·2006
Intrinsic Chirality in a Bent‐Core Mesogen Induced by Extrinsic Chiral Structures
Suk‐Won Choi, Sungmin Kang, Yoichi Takanishi, Ken Ishikawa, Junji Watanabe, Hideo Takezoe
SJR Q1Angewandte Chemie International Edition

Going bananas: In a twisted geometry, an extrinsically chiral supermolecular structure was obtained in the calamitic phase. Upon cooling down to form the Bx phase, imbalanced growth of an intrinsic preferential chiral structure was attained. The preferential chiral handedness of the banana mesophase can be also controlled by the handedness of the twisted configuration.

Electronic, Optical and Magnetic MaterialsMaterials Science
10
Article|50 citations·2019
Circularly Polarized Luminescence Induced by Chiral Super Nanospaces
Byeong‐Cheon Kim, Hyeon‐Joon Choi, Jae‐Jin Lee, Fumito Araoka, Suk‐Won Choi
SJR Q1Advanced Functional Materials

Abstract A simple methodology is developed to realize chiroptical function induced through superstructural chirality of a matrix of helical nanofilaments formed by achiral molecules. In this work, circularly polarized luminescence is demonstrated in nanosegregated mesophase comprising only achiral molecules. An achiral molecular mixture of a bent‐core host and a rod‐like guest blended with a fluorescent dye is prepared. Circularly polarized luminescence confirms that the chiral superstructure co

Organic ChemistryChemistry
11
Article|45 citations·2013
Liquid-Crystalline Blue Phase II System Comprising a Bent-Core Molecule with a Wide Stable Temperature Range
Kyung‐Won Park, Min‐Jun Gim, Sunhwan Kim, Sung‐Taek Hur, Suk‐Won Choi
SJR Q1ACS Applied Materials & Interfaces

A thermodynamically stable blue phase II (BPII) has been prepared, and its electrooptical (EO) performance has been evaluated in a host system of a conventional rodlike nematogen mixed with a bent-core molecule. For the mixed system presented, the widest temperature range of BPII stability, during cooling/heating, was >6 °C. This range is much wider than those of conventional nematogens blended with chiral dopants. EO observations show that the BPII produced exhibited stable EO performance based

Electronic, Optical and Magnetic MaterialsMaterials Science
12
Article|42 citations·1998
Second-Harmonic Generation in Achiral Bent-Shaped Liquid Crystals
Suk‐Won Choi, Yoshitaka Kinoshita, Byoungchoo Park, Hideo Takezoe, Teruki Niori, Junji Watanabe
SJR Q3Japanese Journal of Applied Physics

Second-harmonic generation (SHG) has been observed as functions of temperature, electric field and incidence angle in the liquid crystal phases of the achiral bent-shaped molecules with octyloxy end chains (P-8-O-PIMB). In the highest temperature B 2 phase, the SHG for oblique incidence started to appear at an electric field when the texture change due to the electric-field-induced molecular and dipolar reorientations occured. The SHG interferometry clearly indicated the reversal of polarization

Electronic, Optical and Magnetic MaterialsMaterials Science
13
Article|42 citations·2020
Inverse Helical Nanofilament Networks Serving as a Chiral Nanotemplate
Jaejin Lee, Byeong‐Cheon Kim, Hyeon‐Joon Choi, Sangwok Bae, Fumito Araoka, Suk‐Won Choi
SJR Q1ACS Nano

Herein, an epoch-making method based on bottom-up templating is proposed for the fabrication of a chiral nanoporous film that provides a chiral environment in which to confine nematic liquid crystals. A helical nanofilamental network of bent-core molecules was utilized as a three-dimensional mold, and thus the fabricated chiral nanoporous film has an inverse nanohelical structure. The presence of a chiral superstructure was confirmed by the observation of circular dichroism signals. Upon refilli

Electronic, Optical and Magnetic MaterialsMaterials Science
14
Article|41 citations·1999
Structure and Switching in Bent-Shaped Molecular Liquid Crystal Systems with Two Mesogenic Groups Linked by Alkylene Spacer
Suk‐Won Choi, Masahito Zennyoji, Yoichi Takanishi, Hideo Takezoe, Teruki Niori, Junji Watanabe
Molecular crystals and liquid crystals science technology. Section A, Molecular crystals and liquid crystals/Molecular crystals and liquid crystals science and technology. Section A, Molecular crystals and liquid crystals

Abstract Structure and switching behavior were studied in liquid crystals consisting of bent-shaped molecules with the linkage of an alkylene spacer, m(O)AMnAM(O)m, where m and n are carbon numbers of end and spacer chains, respectively. All the compounds exhibit a fan-shaped texture without a fringe structure in their smectic phase, different from the texture of conventional bent (banana)-shaped liquid crystals. In 12AM5AM12, two switching current peaks indicating the antiferroelectric phase we

Electronic, Optical and Magnetic MaterialsMaterials Science
15
Article|40 citations·2006
Photoinduced circular anisotropy in a photochromicW-shaped-molecule-doped polymeric liquid crystal film
Suk‐Won Choi, Na Young Ha, Kazuaki Shiromo, N. V. S. Rao, M. K. Paul, Takehiro Toyooka, Suzushi Nishimura, J. W. Wu, Byoungchoo Park, Yoichi Takanishi, Ken Ishikawa, Hideo Takezoe
SJR Q2Physical Review E

Photoinduced circular anisotropy has been demonstrated in thin films of a main-chain polymeric liquid crystal (PLC) system doped with photochromic W-shaped molecules containing two azobenzene groups by irradiating with circularly polarized light (CPL). Reversible photoinduced circular dichroism (CD) was observed with sign relevant to the handedness of the CPL. The experimentally observed CD spectra were analyzed using the DeVoe polarizability model associated with the coupled oscillator method.

Electronic, Optical and Magnetic MaterialsMaterials Science

Research Areas

Electronic, Optical and Magnetic MaterialsElectrical and Electronic EngineeringAtomic and Molecular Physics, and OpticsMaterials ChemistryOrganic ChemistryMedia Technology

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