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Chang-Sun Choi

Hanyang University · 工学

研究室紹介

Professor Chang-Sun Choi's research lab specializes in the development of flexible, stretchable, and wearable electro-mechanical devices for next-generation biomedical and electronic applications. The lab focuses on advanced nanomaterials and novel fabrication techniques—such as intaglio transfer printing and helical coiling of carbon nanotube yarns—to create high-performance devices including ultra-thin light-emitting diodes, hemispherically curved image sensors, and fiber-based supercapacitors. Key research directions include energy storage, soft bioelectronics, and optoelectronic integration for implantable and wearable systems.

flexible electronicsenergy storagebioelectronicsnanomaterialswearable devices

Research Overview

Papers
242
Total Citations
10,779
Papers (5y)
97
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
97total
2022
2023
2024
2025
2026
Citations per year (5y)
1,351total
20222023202420252026

Selected Papers

15
1
Article|688 citations·2015
Wearable red–green–blue quantum dot light-emitting diode array using high-resolution intaglio transfer printing
Moon Kee Choi, Jiwoong Yang, Kwanghun Kang, Dong Chan Kim, Changsoon Choi, Chaneui Park, Seok Joo Kim, Sue In Chae, Tae‐Ho Kim, Ji Hoon Kim, Taeghwan Hyeon, Dae‐Hyeong Kim
SJR Q1Nature CommunicationsOA

Deformable full-colour light-emitting diodes with ultrafine pixels are essential for wearable electronics, which requires the conformal integration on curvilinear surface as well as retina-like high-definition displays. However, there are remaining challenges in terms of polychromatic configuration, electroluminescence efficiency and/or multidirectional deformability. Here we present ultra-thin, wearable colloidal quantum dot light-emitting diode arrays utilizing the intaglio transfer printing t

Materials ChemistryMaterials Science
2
Article|534 citations·2017
Human eye-inspired soft optoelectronic device using high-density MoS2-graphene curved image sensor array
Changsoon Choi, Moon Kee Choi, Siyi Liu, Minsung Kim, Ok Kyu Park, Changkyun Im, Jaemin Kim, Xiaoliang Qin, Gil Ju Lee, Kyoung Won Cho, Myungbin Kim, Eehyung Joh
SJR Q1Nature CommunicationsOA

Abstract Soft bioelectronic devices provide new opportunities for next-generation implantable devices owing to their soft mechanical nature that leads to minimal tissue damages and immune responses. However, a soft form of the implantable optoelectronic device for optical sensing and retinal stimulation has not been developed yet because of the bulkiness and rigidity of conventional imaging modules and their composing materials. Here, we describe a high-density and hemispherically curved image s

Biomedical EngineeringEngineering
3
Article|376 citations·2013
Flexible Supercapacitor Made of Carbon Nanotube Yarn with Internal Pores
Changsoon Choi, Jae Ah Lee, A Young Choi, Youn Tae Kim, Xavier Lepró, Márcio D. Lima, Ray H. Baughman, Seon Jeong Kim
SJR Q1Advanced MaterialsOA

Electrochemical deposition of MnO2 onto carbon nanotube (CNT) yarn gives a high-performance, flexible yarn supercapacitor. The hybrid yarn's blended structure, resulting from trapping of MnO2 in its internal pores, effectively enlarges electrochemical area and reduces charge diffusion length. Accordingly, the yarn supercapacitor exhibits high values of capacitance, energy density, and average power density. Applications in wearable electronics can be envisaged.

Electronic, Optical and Magnetic MaterialsMaterials Science
4
Article|333 citations·2020
Curved neuromorphic image sensor array using a MoS2-organic heterostructure inspired by the human visual recognition system
Changsoon Choi, Juyoung Leem, Minsung Kim, Amir Taqieddin, Chullhee Cho, Kyoung Won Cho, Gil Ju Lee, Hyojin Seung, Hyung Jong Bae, Young Min Song, Taeghwan Hyeon, N. R. Aluru
SJR Q1Nature CommunicationsOA

Abstract Conventional imaging and recognition systems require an extensive amount of data storage, pre-processing, and chip-to-chip communications as well as aberration-proof light focusing with multiple lenses for recognizing an object from massive optical inputs. This is because separate chips ( i . e ., flat image sensor array, memory device, and CPU) in conjunction with complicated optics should capture, store, and process massive image information independently. In contrast, human vision em

Electrical and Electronic EngineeringEngineering
5
Article|262 citations·2015
Stretchable, Weavable Coiled Carbon Nanotube/MnO2/Polymer Fiber Solid-State Supercapacitors
Changsoon Choi, Shi Hyeong Kim, Hyeon Jun Sim, Jae Ah Lee, A Young Choi, Youn Tae Kim, Xavier Lepró, Geoffrey M. Spinks, Ray H. Baughman, Seon Jeong Kim
SJR Q1Scientific ReportsOA

Fiber and yarn supercapacitors that are elastomerically deformable without performance loss are sought for such applications as power sources for wearable electronics, micro-devices, and implantable medical devices. Previously reported yarn and fiber supercapacitors are expensive to fabricate, difficult to upscale, or non-stretchable, which limits possible use. The elastomeric electrodes of the present solid-state supercapacitors are made by using giant inserted twist to coil a nylon sewing thre

Electronic, Optical and Magnetic MaterialsMaterials Science
6
Article|243 citations·2016
Twistable and Stretchable Sandwich Structured Fiber for Wearable Sensors and Supercapacitors
Changsoon Choi, Jae Myeong Lee, Shi Hyeong Kim, Seon Jeong Kim, Jiangtao Di, Ray H. Baughman, Jiangtao Di, Ray H. Baughman
SJR Q1Nano Letters

Twistable and stretchable fiber-based electrochemical devices having high performance are needed for future applications, including emerging wearable electronics. Weavable fiber redox supercapacitors and strain sensors are here introduced, which comprise a dielectric layer sandwiched between functionalized buckled carbon nanotube electrodes. On the macroscopic scale, the sandwiched core rubber of the fiber acts as a dielectric layer for capacitive strain sensing and as an elastomeric substrate t

Biomedical EngineeringEngineering
7
Article|232 citations·2016
Elastomeric and Dynamic MnO2/CNT Core–Shell Structure Coiled Yarn Supercapacitor
Changsoon Choi, Hyeon Jun Sim, Geoffrey M. Spinks, Xavier Lepró, Ray H. Baughman, Seon Jeong Kim
SJR Q1Advanced Energy Materials

Reversibly deformable and highly performing solid-state yarn supercapacitors are obtained using MnO2-deposited microcoiled yarn electrodes. The core(CNT)–shell(MnO2)-structured coiled electrodes achieve high stretchability (37.5%) without the help of elastomeric substrates, minimizing the size of the supercapacitors. Therefore, high specific capacitances of 34.6 F cm−3, 61.25 mF cm−2, and 2.72 mF cm−1 are achieved for coiled supercapacitors without impairing mechanical stretchability or electroc

Electronic, Optical and Magnetic MaterialsMaterials Science
8
Review|220 citations·2018
Wearable and Implantable Soft Bioelectronics Using Two-Dimensional Materials
Changsoon Choi, Youngsik Lee, Kyoung Won Cho, Ja Hoon Koo, Dae‐Hyeong Kim
SJR Q1Accounts of Chemical Research

Soft bioelectronics intended for application to wearable and implantable biomedical devices have attracted great attention from material scientists, device engineers, and clinicians because of their extremely soft mechanical properties that match with a variety of human organs and tissues, including the brain, heart, skin, eye, muscles, and neurons, as well as their wide diversity in device designs and biomedical functions that can be finely tuned for each specific case of applications. These un

Biomedical EngineeringEngineering
9
Article|182 citations·2019
Self-Powered Pressure- and Vibration-Sensitive Tactile Sensors for Learning Technique-Based Neural Finger Skin
Sungwoo Chun, Wonkyeong Son, Haeyeon Kim, Sang Kyoo Lim, Changhyun Pang, Changsoon Choi
SJR Q1Nano Letters

Finger skin electronics are essential for realizing humanoid soft robots and/or medical applications that are very similar to human appendages. A selective sensitivity to pressure and vibration that are indispensable for tactile sensing is highly desirable for mimicking sensory mechanoreceptors in skin. Additionally, for a human-machine interaction, output signals of a skin sensor should be highly correlated to human neural spike signals. As a demonstration of fully mimicking the skin of a human

Biomedical EngineeringEngineering
10
Article|178 citations·2016
Improvement of system capacitance via weavable superelastic biscrolled yarn supercapacitors
Changsoon Choi, Kang Min Kim, Keon Jung Kim, Xavier Lepró, Geoffrey M. Spinks, Ray H. Baughman, Seon Jeong Kim
SJR Q1Nature CommunicationsOA

Abstract Yarn-based supercapacitors having improved performance are needed for existing and emerging wearable applications. Here, we report weavable carbon nanotube yarn supercapacitors having high performance because of high loadings of rapidly accessible charge storage particles (above 90 wt% MnO 2 ). The yarn electrodes are made by a biscrolling process that traps host MnO 2 nanoparticles within the galleries of helically scrolled carbon nanotube sheets, which provide strength and electrical

Electronic, Optical and Magnetic MaterialsMaterials Science
11
Article|129 citations·2016
Microscopically Buckled and Macroscopically Coiled Fibers for Ultra‐Stretchable Supercapacitors
Chang-Soon Choi, Ji Hwan Kim, Hyeon Jun Sim, Jiangtao Di, Ray H. Baughman, Seon Jeong Kim
SJR Q1Advanced Energy Materials

Macroscopically coiled and microscopically buckled fiber electrodes are introduced for an ultra-stretchable supercapacitor. The pseudocapacitive MnO2-coated, solid-state, buckled coil supercapacitor provides superelasticity (400%–800%) and high linear, areal capacitances (4.8 mF cm−1 and 22.8 mF cm−2). Additionally, the capacitances of the supercapacitor decrease by less than 7.4% and 7% when stretched by 600% statically and dynamically, respectively. As a service to our authors and readers, thi

Electronic, Optical and Magnetic MaterialsMaterials Science
12
Article|97 citations·2019
Water-Resistant and Skin-Adhesive Wearable Electronics Using Graphene Fabric Sensor with Octopus-Inspired Microsuckers
Sungwoo Chun, Wonkyeong Son, Da Wan Kim, Ji‐Hyun Lee, Hyeongho Min, Hachul Jung, Dahye Kwon, A-Hee Kim, Young‐Jin Kim, Sang Kyoo Lim, Changhyun Pang, Changsoon Choi
SJR Q1ACS Applied Materials & Interfaces

Wearable and skin-attachable electronics with portable/wearable and stretchable smart sensors are essential for health-care monitoring devices or systems. The property of adhesion to the skin in both dry and wet environments is strongly required for efficient monitoring of various human activities. We report here a facile, low-cost, scalable fabrication method for skin-adhesive graphene-coated fabric (GCF) sensors that are sensitive and respond fast to applied pressure and strain. With octopus-l

Biomedical EngineeringEngineering
13
Article|93 citations·2019
Highly twisted supercoils for superelastic multi-functional fibres
Wonkyeong Son, Sungwoo Chun, Jae Myeong Lee, Yourack Lee, Jeongmin Park, Dongseok Suh, Duck Weon Lee, Hachul Jung, Young‐Jin Kim, Younghoon Kim, Soon Moon Jeong, Sang Kyoo Lim
SJR Q1Nature CommunicationsOA

Abstract Highly deformable and electrically conductive fibres with multiple functionalities may be useful for diverse applications. Here we report on a supercoil structure (i.e. coiling of a coil) of fibres fabricated by inserting a giant twist into spandex-core fibres wrapped in a carbon nanotube sheath. The resulting supercoiled fibres show a highly ordered and compact structure along the fibre direction, which can sustain up to 1,500% elastic deformation. The supercoiled fibre exhibits an inc

Mechanical EngineeringEngineering
14
Article|87 citations·2022
Integration of synaptic phototransistors and quantum dot light-emitting diodes for visualization and recognition of UV patterns
Hyojin Seung, Changsoon Choi, Dong Chan Kim, Ji Su Kim, Jeong Hyun Kim, Junhee Kim, Soo Ik Park, Jung Ah Lim, Jiwoong Yang, Moon Kee Choi, Taeghwan Hyeon, Dae‐Hyeong Kim
SJR Q1Science AdvancesOA

Synaptic photodetectors exhibit photon-triggered synaptic plasticity, which thus can improve the image recognition rate by enhancing the image contrast. However, still, the visualization and recognition of invisible ultraviolet (UV) patterns are challenging, owing to intense background noise. Here, inspired by all-or-none potentiation of synapse, we develop an integrated device of synaptic phototransistors (SPTrs) and quantum dot light-emitting diodes (QLEDs), facilitating noise reduction and vi

Electrical and Electronic EngineeringEngineering
15
Article|84 citations·2016
Nanomaterial‐Based Soft Electronics for Healthcare Applications
Changsoon Choi, Moon Kee Choi, Taeghwan Hyeon, Dae‐Hyeong Kim
SJR Q2ChemNanoMat

Abstract Soft electronic devices, particularly for healthcare applications, have been intensively studied over the past decade owing to their unique advantages over conventional rigid electronics. These advantages include conformal contacts on target tissues such as the skin, heart, and brain along with a high deformability that minimizes unwanted inflammatory responses. To achieve mechanically soft but multifunctional high performance electronics for wearable and implantable biomedical devices,

Biomedical EngineeringEngineering

Research Areas

Electrical and Electronic EngineeringBiomedical EngineeringElectronic, Optical and Magnetic MaterialsMechanical EngineeringMaterials ChemistryComputer Networks and Communications

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