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Hong Chul Moon

Korea Advanced Institute of Science and Technology · 材料科学

研究室紹介

Professor Hong Chul Moon's research lab specializes in the development of functional ion gels and ionic conductive materials for next-generation flexible and wearable electronic devices. The lab focuses on designing smart, stretchable, and transparent electrolytes using block copolymers and ionic liquids, enabling applications in electrochromic devices, electrochemiluminescent systems, and high-performance supercapacitors. Key research directions include tuning molecular structures for multicolor electrochromism, enhancing ionic conductivity and mechanical durability, and integrating these materials into low-voltage, solution-processable devices. The lab emphasizes materials innovation for sustainable, high-performance electronics with applications in wearable technology and energy storage.

ion gelselectrochromic deviceselectrochemiluminescenceflexible electronicsionic conductors

Research Overview

Papers
149
Total Citations
4,710
Papers (5y)
46
Primary Field
材料科学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
46total
2022
2023
2024
2025
2026
Citations per year (5y)
690total
20222023202420252026

Selected Papers

15
1
Article|257 citations·2016
Multicolored, Low-Power, Flexible Electrochromic Devices Based on Ion Gels
Hong Chul Moon, Chang‐Hyun Kim, Timothy P. Lodge, C. Daniel Frisbie
SJR Q1ACS Applied Materials & Interfaces

Ion gels composed of a copolymer and a room temperature ionic liquid are versatile solid-state electrolytes with excellent features including high ionic conductivity, nonvolatility, easily tunable mechanical properties, good flexibility and solution processability. Ion gels can be functionalized by incorporating redox-active species such as electrochemiluminescent (ECL) luminophores or electrochromic (EC) dyes. Here, we enhance the functionality of EC gels for realizing multicolored EC devices (

Polymers and PlasticsMaterials Science
2
Article|251 citations·2015
Solution Processable, Electrochromic Ion Gels for Sub-1 V, Flexible Displays on Plastic
Hong Chul Moon, Timothy P. Lodge, C. Daniel Frisbie
SJR Q1Chemistry of Materials

The functionality of ion gels can be enhanced by incorporating different types of redox-active species. Here, we have expanded the functionality of ion gels composed of polystyrene- block -poly(methyl methacrylate)- block -polystyrene and 1-ethyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide to include electrochromism by adding an electrochromic (EC) redox molecule, methyl viologen. Ferrocene was also added to the EC gel as an anodic species. The EC gel was inserted between two indium–ti

Polymers and PlasticsMaterials Science
3
Article|227 citations·2014
Solution-Processable Electrochemiluminescent Ion Gels for Flexible, Low-Voltage, Emissive Displays on Plastic
Hong Chul Moon, Timothy P. Lodge, C. Daniel Frisbie
SJR Q1Journal of the American Chemical Society

Ion gels comprising ABA triblock copolymers and ionic liquids have received much attention as functional materials in numerous applications, especially as gate dielectrics in organic transistors. Here we have expanded the functionality of ion gels by demonstrating low-voltage, flexible electrochemiluminescent (ECL) devices using patterned ion gels containing redox-active luminophores. The ECL devices consisted only of a 30 μm thick emissive gel and two electrodes and were fabricated on indium ti

Polymers and PlasticsMaterials Science
4
Article|224 citations·2019
Ionoskins: Nonvolatile, Highly Transparent, Ultrastretchable Ionic Sensory Platforms for Wearable Electronics
Yong Min Kim, Hong Chul Moon
SJR Q1Advanced Functional Materials

Abstract The primary technology of next‐generation wearable electronics pursues the development of highly deformable and stable systems. Here, nonvolatile, highly transparent, and ultrastretchable ionic conductors based on polymeric gelators [poly(methyl methacrylate‐ ran ‐butyl acrylate), PMMA‐ r ‐PBA] and ionic liquids (IL) are proposed. A crucial strategy in the molecular design of polymer gelators is copolymerization of PMMA and IL‐insoluble low glass transition temperature ( T g ) polymers

Biomedical EngineeringEngineering
5
Article|159 citations·2017
Voltage-Tunable Multicolor, Sub-1.5 V, Flexible Electrochromic Devices Based on Ion Gels
Hwan Oh, Dong Gyu Seo, Tae Yong Yun, Chan Young Kim, Hong Chul Moon
SJR Q1ACS Applied Materials & Interfaces

Voltage-tunable multicolor electrochromic devices (ECDs) are fabricated based on flexible ion gels consisting of copolymers and ionic liquids as an electrolyte layer. Dimethyl ferrocene (dmFc) is incorporated into the gel, which serves as an anodic species. In this study, two electrochromic (EC) materials, monoheptyl viologen (MHV + ) and diheptyl viologen (DHV 2+ ), are employed and show significantly different EC behavior despite the similar chemical structure. Both MHV + - and DHV 2+ -contain

Polymers and PlasticsMaterials Science
6
Article|150 citations·2020
Reliable, High-Performance Electrochromic Supercapacitors Based on Metal-Doped Nickel Oxide
Seon Yeong Kim, Tae Yong Yun, Kyeong Su Yu, Hong Chul Moon
SJR Q1ACS Applied Materials & Interfaces

Herein, high-performance, reliable electrochromic supercapacitors (ECSs) are proposed based on tungsten trioxide (WO<sub>3</sub>) and nickel oxide (NiO) films. To maximize device performance and stability, the stoichiometric balance between anode and cathode materials is controlled by carefully adjusting the thickness of the anodic NiO film while fixing the thickness of WO<sub>3</sub> to ∼660 nm. Then, a small amount (≤10 mol %) of metal (e.g., copper) is doped into the NiO film, improving the e

Polymers and PlasticsMaterials Science
7
Review|121 citations·2022
Recent progress in electrochromic energy storage materials and devices: a minireview
Devesh K. Pathak, Hong Chul Moon
SJR Q1Materials Horizons

Integration of several functionalities into one isolated electrochemical body is necessary to realize compact and tiny smart electronics. Recently, two different technologies, electrochromic (EC) materials and energy storage, were combined to create a single system that supports and drives both functions simultaneously. In EC energy storage devices, the characteristic feature of EC materials, their optical modulation depending on the applied voltage, is used to visually identify the stored energ

Polymers and PlasticsMaterials Science
8
Article|119 citations·2020
Extremely fast electrochromic supercapacitors based on mesoporous WO3 prepared by an evaporation-induced self-assembly
Keon‐Woo Kim, Tae Yong Yun, Sang‐Hoon You, Xiaowu Tang, Jae Yong Lee, Yeseong Seo, Yong‐Tae Kim, Se Hyun Kim, Hong Chul Moon, Jin Kon Kim
SJR Q1NPG Asia MaterialsOA

Abstract Mesoporous metal oxides consisting of fully interconnected network structures with small pores (20–50 nm) have high surface areas and decreased ion intercalation distances, making them ideal for use in high-performance electrochromic supercapacitors (ECSs). Evaporation-induced self-assembly (EISA), which combines sol–gel chemistry and molecular self-assembly, is a powerful method for the fabrication of mesoporous metal oxides through a solution phase synthesis. Herein, we introduce ultr

Polymers and PlasticsMaterials Science
9
Article|109 citations·2018
Dual-Function Electrochromic Supercapacitors Displaying Real-Time Capacity in Color
Tae Yong Yun, Xinlin Li, Se Hyun Kim, Hong Chul Moon
SJR Q1ACS Applied Materials & Interfaces

Dual-function electrochromic supercapacitors (ECSs) that indicate their real-time charge capacity in color are fabricated using tungsten trioxide (WO<sub>3</sub>) and Li-doped ion gels containing hydroquinone (HQ). The ECSs can simultaneously serve as either electrochromic devices or supercapacitors. The coloration/bleaching and charging/discharging characteristics are investigated between 0 and -1.5 V. At the optimal HQ concentration, large transmittance contrast (∼91%), high coloration efficie

Polymers and PlasticsMaterials Science
10
Article|101 citations·2018
Mechanically Robust, Highly Ionic Conductive Gels Based on Random Copolymers for Bending Durable Electrochemical Devices
Dong Gyu Seo, Hong Chul Moon
SJR Q1Advanced Functional Materials

Abstract Mechanically robust, highly ionic conductive gels based on a random copolymer of poly[styrene ‐ran‐ 1‐(4‐vinylbenzyl)‐3‐methylimidazolium hexafluorophosphate] (P[S ‐r‐ VBMI][PF 6 ]) and the ionic liquid 1‐ethyl‐3‐methylimidazolium bis(trifluoromethylsulfonyl)imide ([EMI][TFSI]) are successfully prepared. The gels with either homo P[VBMI][PF 6 ] or conventional PS‐ block ‐poly(methyl methacrylate)‐ block ‐PS (SMS) show significant trade‐off between ionic conductivity and mechanical resil

Polymers and PlasticsMaterials Science
11
Article|100 citations·2021
Porous Ion Gel: A Versatile Ionotronic Sensory Platform for High-Performance, Wearable Ionoskins with Electrical and Optical Dual Output
Jin Han Kwon, Yong Min Kim, Hong Chul Moon
SJR Q1ACS Nano

The development of elastic ionic conductors offers opportunities to fabricate key wearable ionic components such as ionoskins that can perceive mechanical deformation. However, there is still plenty of room to overcome the trade-off between sensitivity and detectable range of previous systems and impart additional functionality. Here, we propose porous ion gels for high-performance, functional ionic sensory platforms. The porous ion gels can be effectively deformed by closing pores even with a s

Biomedical EngineeringEngineering
12
Article|85 citations·2020
Semitransparent Energy‐Storing Functional Photovoltaics Monolithically Integrated with Electrochromic Supercapacitors
Junhee Cho, Tae Yong Yun, Hye Yeon Noh, Seung Hun Baek, Minwoo Nam, Byung‐Hoon Kim, Hong Chul Moon, Doo‐Hyun Ko
SJR Q1Advanced Functional Materials

Abstract Energy‐storing functional photovoltaics, which can simultaneously harvest and store solar energy, are proposed as promising next‐generation multifunction energy systems. For the extension of conventional organic photovoltaics (OPVs), electrochromic supercapacitors (ECSs) are monolithically integrated with semitransparent (ST) quaternary blend‐based OPVs (ST Q‐OPVs) to achieve compact, energy‐efficient storage with great aesthetic appeal. In particular, ST Q‐OPVs with low‐power‐consumpti

Polymers and PlasticsMaterials Science
13
Article|80 citations·2020
Ultra-Low Power Electrochromic Heat Shutters Through Tailoring Diffusion-Controlled Behaviors
Ye Ryeong In, Yong Min Kim, Yujeong Lee, Won Young Choi, Se Hyun Kim, Seung Woo Lee, Hong Chul Moon
SJR Q1ACS Applied Materials & Interfaces

In this study, we propose low power consumption, all-in-one type electrochromic devices (ECDs) for effective heat shutters. Considering diffusion-controlled device operation, polymeric viologens (poly-viologens) are synthesized to lower the diffusivity of EC chromophores and to minimize self-bleaching. In comparison with devices based on mono-viologens corresponding to the monomer of poly-viologens, poly-viologen-containing ECDs exhibit advantages of lower coloration voltage (ca, -0.55 V) and hi

Polymers and PlasticsMaterials Science
14
Article|77 citations·2016
Low-voltage, simple WO3-based electrochromic devices by directly incorporating an anodic species into the electrolyte
Jaehyun Bae, Haekyoung Kim, Hong Chul Moon, Se Hyun Kim
SJR Q1Journal of Materials Chemistry C

Low-voltage tungsten trioxide (WO<sub>3</sub>)-based electrochromic devices (ECDs) are successfully demonstrated.

Polymers and PlasticsMaterials Science
15
Article|73 citations·2021
Unveiling the diffusion-controlled operation mechanism of all-in-one type electrochromic supercapacitors: Overcoming slow dynamic response with ternary gel electrolytes
Yeon Jae Jang, Seon Yeong Kim, Yong Min Kim, Jae Kyeong Lee, Hong Chul Moon
SJR Q1Energy storage materials
Polymers and PlasticsMaterials Science

Research Areas

Polymers and PlasticsMaterials ChemistryBiomedical EngineeringElectrical and Electronic EngineeringOrganic ChemistryMolecular Biology

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