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Do Hwan Kim

Hanyang University · 工学

研究室紹介

Professor Do Hwan Kim's research lab specializes in the development of advanced functional materials and devices for next-generation human-machine interfaces and sustainable energy technologies. The lab focuses on designing smart, wearable sensors—particularly piezocapacitive and ionic tactile sensors—inspired by biological mechanotransduction mechanisms, enabling high-sensitivity, multimodal detection of mechanical, thermal, and physiological signals. A key research direction involves engineering nanomaterials such as carbon nanotube microyarns, single-atom catalysts, and liquid-crystalline semiconductors to enhance performance in flexible electronics and rechargeable metal-air batteries. The lab also explores surface engineering strategies to control molecular ordering and interfacial interactions for high-performance organic field-effect transistors and energy storage systems.

wearable sensorsionic tactile sensorsbifunctional electrocatalystsnanomaterialsflexible electronics

Research Overview

Papers
207
Total Citations
13,869
Papers (5y)
69
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
69total
2022
2023
2024
2025
2026
Citations per year (5y)
880total
20222023202420252026

Selected Papers

15
1
Article|413 citations·2015
Highly Sensitive and Multimodal All‐Carbon Skin Sensors Capable of Simultaneously Detecting Tactile and Biological Stimuli
So Young Kim, Sangsik Park, Han Wool Park, Do Hyung Park, Youngjin Jeong, Do Hwan Kim
SJR Q1Advanced Materials

A highly sensitive, wearable, and multimodal skin sensor that uses hierarchically engineered elastic carbon nanotube microyarns is described. Piezocapacitive all-carbon skin sensors simultaneously detect heterogeneous external subtle stimuli, including mechanical deformation, touch, temperature or humidity gradients, and even biological variables with different dipole moments, which enables in situ human monitoring as well as recognition of robot-human-environmental interface. As a service to ou

Biomedical EngineeringEngineering
2
Article|258 citations·2019
A bioinspired hydrogen bond-triggered ultrasensitive ionic mechanoreceptor skin
Vipin Amoli, Joo Sung Kim, Eunsong Jee, Yoon Sun Chung, So Young Kim, Jehyoung Koo, Hanbin Choi, Yunah Kim, Do Hwan Kim
SJR Q1Nature CommunicationsOA

Abstract Biological cellular structures have inspired many scientific disciplines to design synthetic structures that can mimic their functions. Here, we closely emulate biological cellular structures in a rationally designed synthetic multicellular hybrid ion pump, composed of hydrogen-bonded [EMIM + ][TFSI − ] ion pairs on the surface of silica microstructures (artificial mechanoreceptor cells) embedded into thermoplastic polyurethane elastomeric matrix (artificial extracellular matrix), to fa

Biomedical EngineeringEngineering
3
Article|228 citations·2009
Liquid-Crystalline Semiconducting Copolymers with Intramolecular Donor−Acceptor Building Blocks for High-Stability Polymer Transistors
Do Hwan Kim, Bang-Lin Lee, Hyunsik Moon, Hee Min Kang, Eun Jeong Jeong, Jeong-Il Park, Kuk-Min Han, Sangyoon Lee, Byung Wook Yoo, Bon Won Koo, Joo Young Kim, Wi Hyoung Lee
SJR Q1Journal of the American Chemical Society

The ability to control the molecular organization of electronically active liquid-crystalline polymer semiconductors on surfaces provides opportunities to develop easy-to-process yet highly ordered supramolecular systems and, in particular, to optimize their electrical and environmental reliability in applications in the field of large-area printed electronics and photovoltaics. Understanding the relationship between liquid-crystalline nanostructure and electrical stability on appropriate molecu

Electrical and Electronic EngineeringEngineering
4
Review|209 citations·2019
Ionic Tactile Sensors for Emerging Human‐Interactive Technologies: A Review of Recent Progress
Vipin Amoli, Joo Sung Kim, So Young Kim, Jehyoung Koo, Yoon Sun Chung, Hanbin Choi, Do Hwan Kim
SJR Q1Advanced Functional Materials

Abstract Ionic tactile sensors (ITS) represent a new class of deformable sensory platforms that mimic not only the tactile functions and topological structures but also the mechanotransduction mechanism across the biological ion channels in human skin, which can demonstrate a more advanced biological interface for targeting emerging human‐interactive technologies compared to conventional e‐skin devices. Recently, flexible and even stretchable ITS have been developed using novel structural design

Biomedical EngineeringEngineering
5
Article|204 citations·2017
An Ultrasensitive, Visco‐Poroelastic Artificial Mechanotransducer Skin Inspired by Piezo2 Protein in Mammalian Merkel Cells
Ming Jin, Sangsik Park, Young‐Hoon Lee, Ji Hye Lee, Junho Chung, Joo Sung Kim, Jong‐Seon Kim, So Young Kim, Eunsong Jee, Dae Woo Kim, Jae Woo Chung, Seung Geol Lee
SJR Q1Advanced Materials

An artificial ionic mechanotransducer skin with an unprecedented sensitivity over a wide spectrum of pressure by fabricating visco-poroelastic nanochannels and microstructured features, directly mimicking the physiological tactile sensing mechanism of Piezo2 protein is demonstrated. This capability enables voice identification, health monitoring, daily pressure measurements, and even measurements of a heavy weight beyond capabilities of human skin.

Biomedical EngineeringEngineering
6
Article|142 citations·2008
Tunable Crystal Nanostructures of Pentacene Thin Films on Gate Dielectrics Possessing Surface‐Order Control
Do Hwan Kim, Hwa Sung Lee, Hoichang Yang, Lin Yang, Kilwon Cho
SJR Q1Advanced Functional Materials

Abstract To enhance the electrical performance of pentacene‐based field‐effect transistors (FETs) by tuning the surface‐induced ordering of pentacene crystals, we controlled the physical interactions at the semiconductor/gate dielectric (SiO 2 ) interface by inserting a hydrophobic self‐assembled monolayer (SAM, CH 3 ‐terminal) of organoalkyl‐silanes with an alkyl chain length of C8, C12, C16, or C18, as a complementary interlayer. We found that, depending on the physical structure of the dielec

Electrical and Electronic EngineeringEngineering
7
Article|135 citations·2005
Solvent Vapor‐Induced Nanowire Formation in Poly(3‐hexylthiophene) Thin Films
Do Hwan Kim, Yeong Don Park, Yunseok Jang, Sung-Soo Kim, Kilwon Cho
SJR Q1Macromolecular Rapid Communications

Abstract Summary: Nanowire lengths and length‐to‐width aspect ratios in regioregular poly(3‐hexylthiophene) (P3HT) were simply controlled through changes in the solvent vapor pressure during solidification. It is demonstrated that the nanowires grew by rod‐to‐rod association, in which the molecular long axis of the P3HT chains appeared to be well‐oriented parallel to the silicon substrate (Si/SiO x ). The formation of the nanowires took place by one dimensional self‐assembly, governed by π ‐ π s

Electrical and Electronic EngineeringEngineering
8
Article|122 citations·2017
Flexible piezocapacitive sensors based on wrinkled microstructures: toward low-cost fabrication of pressure sensors over large areas
Seolhee Baek, Hayeong Jang, So Young Kim, Heejeong Jeong, Singu Han, Yunseok Jang, Do Hwan Kim, Hwa Sung Lee
SJR Q1RSC AdvancesOA

Wrinkled elastomeric templates prepared by stretching and releasing are utilized for demonstrating highly sensitive, simple, and low-cost piezocapacitive pressure sensors over large area.

Biomedical EngineeringEngineering
9
Article|120 citations·2022
Ultrafast, autonomous self-healable iontronic skin exhibiting piezo-ionic dynamics
Elvis K. Boahen, Baohai Pan, Hyukmin Kweon, Joo Sung Kim, Hanbin Choi, Zhengyang Kong, Dong Jun Kim, Jin Zhu, Wu Bin Ying, Kyung Jin Lee, Do Hwan Kim
SJR Q1Nature CommunicationsOA

Abstract The self-healing properties and ionic sensing capabilities of the human skin offer inspiring groundwork for the designs of stretchable iontronic skins. However, from electronic to ionic mechanosensitive skins, simultaneously achieving autonomously superior self-healing properties, superior elasticity, and effective control of ion dynamics in a homogeneous system is rarely feasible. Here, we report a Cl-functionalized iontronic pressure sensitive material (CLiPS), designed via the introd

Biomedical EngineeringEngineering
10
Article|110 citations·2018
An Ultrastable Ionic Chemiresistor Skin with an Intrinsically Stretchable Polymer Electrolyte
Ming Jin, Sangsik Park, Jong‐Seon Kim, Sung Hyun Kwon, Shuye Zhang, Min Seok Yoo, Sungwoo Jang, Hyeong‐Jun Koh, Soo‐Yeon Cho, Soyoung Kim, Chi Won Ahn, Kilwon Cho
SJR Q1Advanced Materials

Ultrastable sensing characteristics of the ionic chemiresistor skin (ICS) that is designed by using an intrinsically stretchable thermoplastic polyurethane electrolyte as a volatile organic compound (VOC) sensing channel are described. The hierarchically assembled polymer electrolyte film is observed to be very uniform, transparent, and intrinsically stretchable. Systematic experimental and theoretical studies also reveal that artificial ions are evenly distributed in polyurethane matrix without

Electrical and Electronic EngineeringEngineering
11
Article|107 citations·2020
Low-power, deformable, dynamic multicolor electrochromic skin
Jehyoung Koo, Vipin Amoli, So Young Kim, Chaeyoung Lee, Junho Kim, Sung‐Min Park, Jeongsun Kim, Joon Mo Ahn, Kyung Jin Jung, Do Hwan Kim
SJR Q1Nano Energy
Polymers and PlasticsMaterials Science
12
Article|107 citations·2006
Controlled One-Dimensional Nanostructures in Poly(3-hexylthiophene) Thin Film for High-Performance Organic Field-Effect Transistors
Do Hwan Kim, Yunseok Jang, Yeong Don Park, Kilwon Cho
SJR Q1The Journal of Physical Chemistry B

With the aim of improving the field-effect mobilities in poly(3-hexylthiophene) (P3HT) thin film transistors, we controlled the nanostructures of P3HT thin film by changing the solvent vapor pressure in a spin-coating chamber during solidification. The transistors with P3HT thin films spin-coated under a high solvent vapor pressure (56.5 KPa), showing the one-dimensional nanowire morphologies, resulted in the relatively high field-effect mobilities (0.02 cm2/(V.s)) that are typically more than 1

Electrical and Electronic EngineeringEngineering
13
Article|104 citations·2019
An Ultra‐Mechanosensitive Visco‐Poroelastic Polymer Ion Pump for Continuous Self‐Powering Kinematic Triboelectric Nanogenerators
Hee Jae Hwang, Joo Sung Kim, Wook Kim, Hyunwoo Park, Divij Bhatia, Eunsong Jee, Yoon Sun Chung, Do Hwan Kim, Dukhyun Choi
SJR Q1Advanced Energy Materials

Abstract A mechanosensitive, visco‐poroelastic polymer ion pump that can rapidly establish a dense electrical double layer via mechanical pressure, thereby significantly enhancing output performance of an ionic triboelectric nanogenerator (iTENG), is described. A working mechanism of an iTENG using a highly mechanosensitive, visco‐poroelastic ion pump is suggested and the optimal characteristics of the polymer ion pump are reported by investigating optical, mechanical, electrical, and electroche

Biomedical EngineeringEngineering
14
Article|103 citations·2021
Visco‐Poroelastic Electrochemiluminescence Skin with Piezo‐Ionic Effect
Jong Ik Lee, Hanbin Choi, Seok Hwan Kong, Sangsik Park, Dongmok Park, Joo Sung Kim, Sung Hyun Kwon, Jungwook Kim, Soo Hyung Choi, Seung Geol Lee, Do Hwan Kim, Moon Sung Kang
SJR Q1Advanced Materials

Following early research efforts devoted to achieving excellent sensitivity of electronic skins, recent design schemes for these devices have focused on strategies for transduction of spatially resolved sensing data into straightforward user-adaptive visual signals. Here, a material platform capable of transducing mechanical stimuli into visual readout is presented. The material layer comprises a mixture of an ionic transition metal complex luminophore and an ionic liquid (capable of producing e

Biomedical EngineeringEngineering
15
Article|90 citations·2019
Biomimetics for high-performance flexible tactile sensors and advanced artificial sensory systems
Vipin Amoli, So Young Kim, Joo Sung Kim, Hanbin Choi, Jehyoung Koo, Do Hwan Kim
SJR Q1Journal of Materials Chemistry C

Artificial smart designs inspired by structural and functional features of biological organisms have opened new avenues to develop high-performance flexible tactile sensors and advanced artificial sensory systems.

Biomedical EngineeringEngineering

Research Areas

Electrical and Electronic EngineeringBiomedical EngineeringCivil and Structural EngineeringPolymers and PlasticsRenewable Energy, Sustainability and the EnvironmentElectronic, Optical and Magnetic Materials

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