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이태윤 교수

Tae-Yoon Lee

연세대학교 전기전자공학부 · 공학

연구실 소개

이태윤 교수의 연구실은 유연하고 신축성 있는 섬유 기반 전자소자를 중심으로, 스마트 웨어러블 디바이스 및 전자피부(e-skin) 구현을 위한 핵심 소재와 소자를 개발하고 있습니다. 특히 고감도 압력 센서, 신축성 전도성 섬유, 고감도 스트레인 센서 등 다양한 섬유형 1D 전자소재를 설계하고 있으며, 의복이나 장갑에 통합 가능한 실용적인 웨어러블 시스템을 목표로 하고 있습니다. 자연 구조를 모방한 다층 다공성 구조나 나노복합재를 활용해 높은 민감도와 내구성을 확보한 혁신적 소자 기술이 핵심입니다.

섬유형 전자소자스마트 웨어러블신축성 센서전자피부나노복합재

연구 현황

논문 수
327
총 인용 수
10,850
최근 5년 논문
84
주요 분야
공학

연구 성과 추이

표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.

5개년 연도별 논문 게재 수
84총합
2022
2023
2024
2025
2026
5개년 연도별 피인용 수
1,361총합
20222023202420252026

주요 논문

15
1
논문|인용수 1,141·2015
Conductive Fiber‐Based Ultrasensitive Textile Pressure Sensor for Wearable Electronics
Jaehong Lee, Hyukho Kwon, Jungmok Seo, Sera Shin, Ja Hoon Koo, Changhyun Pang, Seungbae Son, Jae Hyung Kim, Yong Hoon Jang, Dae‐Eun Kim, Taeyoon Lee
SJR Q1Advanced MaterialsOA

A flexible and sensitive textile-based pressure sensor is developed using highly conductive fibers coated with dielectric rubber materials. The pressure sensor exhibits superior sensitivity, very fast response time, and high stability, compared with previous textile-based pressure sensors. By using a weaving method, the pressure sensor can be applied to make smart gloves and clothes that can control machines wirelessly as human-machine interfaces.

Biomedical EngineeringEngineering
2
논문|인용수 603·2015
Ag Nanowire Reinforced Highly Stretchable Conductive Fibers for Wearable Electronics
Seulah Lee, Sera Shin, Sang-Geun Lee, Jungmok Seo, Jaehong Lee, Seungbae Son, Hyeon Jin Cho, Hassan Algadi, S.A. Al-Sayari, Dae‐Eun Kim, Taeyoon Lee
SJR Q1Advanced Functional Materials

Stretchable conductive fibers have received significant attention due to their possibility of being utilized in wearable and foldable electronics. Here, highly stretchable conductive fiber composed of silver nanowires (AgNWs) and silver nanoparticles (AgNPs) embedded in a styrene–butadiene–styrene (SBS) elastomeric matrix is fabricated. An AgNW‐embedded SBS fiber is fabricated by a simple wet spinning method. Then, the AgNPs are formed on both the surface and inner region of the AgNW‐embedded fi

Biomedical EngineeringEngineering
3
리뷰|인용수 391·2019
Recent Advances in 1D Stretchable Electrodes and Devices for Textile and Wearable Electronics: Materials, Fabrications, and Applications
Jaehong Lee, Byron Llerena Zambrano, Janghoon Woo, Kukro Yoon, Taeyoon Lee
SJR Q1Advanced Materials

Research on wearable electronic devices that can be directly integrated into daily textiles or clothes has been explosively grown holding great potential for various practical wearable applications. These wearable electronic devices strongly demand 1D electronic devices that are light-weight, weavable, highly flexible, stretchable, and adaptable to comport to frequent deformations during usage in daily life. To this end, the development of 1D electrodes with high stretchability and electrical pe

Biomedical EngineeringEngineering
4
논문|인용수 354·2016
Highly Sensitive Pressure Sensor Based on Bioinspired Porous Structure for Real‐Time Tactile Sensing
Subin Kang, Jaehong Lee, Sang-Geun Lee, Seulgee Kim, Jae‐Kang Kim, Hassan Algadi, S.A. Al-Sayari, Dae‐Eun Kim, DaeEun Kim, Taeyoon Lee
SJR Q1Advanced Electronic Materials

A flexible pressure sensor with high performances is one of the promising candidates for achieving electronic skins (E‐skin) related to various applications such as wearable devices, health monitoring systems, and artificial robot arms. The sensitive response for external mechanical stimulation is fundamentally required to develop the E‐skin which imitates the function of human skin. The performance of capacitive pressure sensors can be improved using morphologies and structures occurring in nat

Biomedical EngineeringEngineering
5
논문|인용수 272·2018
Highly Sensitive Multifilament Fiber Strain Sensors with Ultrabroad Sensing Range for Textile Electronics
Jaehong Lee, Sera Shin, Sang-Geun Lee, Jaekang Song, Subin Kang, Heetak Han, Seulgee Kim, Seunghoe Kim, Jungmok Seo, DaeEun Kim, Taeyoon Lee
SJR Q1ACS Nano

Highly stretchable fiber strain sensors are one of the most important components for various applications in wearable electronics, electronic textiles, and biomedical electronics. Herein, we present a facile approach for fabricating highly stretchable and sensitive fiber strain sensors by embedding Ag nanoparticles into a stretchable fiber with a multifilament structure. The multifilament structure and Ag-rich shells of the fiber strain sensor enable the sensor to simultaneously achieve both a h

Biomedical EngineeringEngineering
6
논문|인용수 232·2015
A Highly Sensitive Hydrogen Sensor with Gas Selectivity Using a PMMA Membrane-Coated Pd Nanoparticle/Single-Layer Graphene Hybrid
Juree Hong, Sang-Geun Lee, Jungmok Seo, Soonjae Pyo, Jongbaeg Kim, Taeyoon Lee
SJR Q1ACS Applied Materials & Interfaces

A polymer membrane-coated palladium (Pd) nanoparticle (NP)/single-layer graphene (SLG) hybrid sensor was fabricated for highly sensitive hydrogen gas (H2) sensing with gas selectivity. Pd NPs were deposited on SLG via the galvanic displacement reaction between graphene-buffered copper (Cu) and Pd ion. During the galvanic displacement reaction, graphene was used as a buffer layer, which transports electrons from Cu for Pd to nucleate on the SLG surface. The deposited Pd NPs on the SLG surface wer

Electrical and Electronic EngineeringEngineering
7
논문|인용수 205·2010
Hysteresis behavior of electrical resistance in Pd thin films during the process of absorption and desorption of hydrogen gas
Eunsongyi Lee, Jun Min Lee, Ja Hoon Koo, Wooyoung Lee, Taeyoon Lee
SJR Q1International Journal of Hydrogen Energy
Electrical and Electronic EngineeringEngineering
8
논문|인용수 175·2017
Rough‐Surface‐Enabled Capacitive Pressure Sensors with 3D Touch Capability
Kilsoo Lee, Jaehong Lee, Gwangmook Kim, Youngjae Kim, Subin Kang, Sungjun Cho, SeulGee Kim, Jae‐Kang Kim, Wooyoung Lee, Dae‐Eun Kim, Shinill Kang, DaeEun Kim
SJR Q1Small

Fabrication strategies that pursue "simplicity" for the production process and "functionality" for a device, in general, are mutually exclusive. Therefore, strategies that are less expensive, less equipment-intensive, and consequently, more accessible to researchers for the realization of omnipresent electronics are required. Here, this study presents a conceptually different approach that utilizes the inartificial design of the surface roughness of paper to realize a capacitive pressure sensor

Biomedical EngineeringEngineering
9
논문|인용수 148·2019
Biomimetic-inspired micro-nano hierarchical structures for capacitive pressure sensor applications
Chandreswar Mahata, Hassan Algadi, Jaehong Lee, Sungjun Kim, Taeyoon Lee
SJR Q1Measurement
Biomedical EngineeringEngineering
10
리뷰|인용수 136·2016
Bio-Inspired Extreme Wetting Surfaces for Biomedical Applications
Sera Shin, Jungmok Seo, Heetak Han, Subin Kang, Hyunchul Kim, Taeyoon Lee
SJR Q2MaterialsOA

Biological creatures with unique surface wettability have long served as a source of inspiration for scientists and engineers. More specifically, materials exhibiting extreme wetting properties, such as superhydrophilic and superhydrophobic surfaces, have attracted considerable attention because of their potential use in various applications, such as self-cleaning fabrics, anti-fog windows, anti-corrosive coatings, drag-reduction systems, and efficient water transportation. In particular, the en

Surfaces, Coatings and FilmsMaterials Science
11
논문|인용수 120·2019
Conductive Hierarchical Hairy Fibers for Highly Sensitive, Stretchable, and Water‐Resistant Multimodal Gesture‐Distinguishable Sensor, VR Applications
Seung‐Hoon Choi, Kukro Yoon, Sang-Geun Lee, Heon Joon Lee, Jaehong Lee, Da Wan Kim, Minseok Kim, Taeyoon Lee, Changhyun Pang
SJR Q1Advanced Functional Materials

Abstract Conductive fibers, which are highly adaptable to the morphologies of the human body, are attractive for the development of wearable systems, smart clothing, and textronics to detect various biological signals and human motions. A fiber‐based conductive sensor interconnected with hierarchical microhairy architectures, exhibiting remarkable stretchability (<200%) and sensitivity for various stimuli (pressure, stretching, and bending), is developed. For distinguishability of multiple ge

Biomedical EngineeringEngineering
12
논문|인용수 111·2003
Use of waste iron metal for removal of Cr(VI) from water
Taeyoon Lee, Lim HyunJung, Yonghun Lee, Jae‐Woo Park
SJR Q1Chemosphere
Biomedical EngineeringEngineering
13
논문|인용수 109·2014
Graphene as an atomically thin barrier to Cu diffusion into Si
Juree Hong, Sanggeun Lee, Seulah Lee, Heetak Han, Chandreswar Mahata, Han-Wool Yeon, Bon-Woong Koo, Seong-Il Kim, Taewook Nam, Kisik Byun, Byung‐Wook Min, Young-Woon Kim
SJR Q1Nanoscale

The evolution of copper-based interconnects requires the realization of an ultrathin diffusion barrier layer between the Cu interconnect and insulating layers. The present work reports the use of atomically thin layer graphene as a diffusion barrier to Cu metallization. The diffusion barrier performance is investigated by varying the grain size and thickness of the graphene layer; single-layer graphene of average grain size 2 ± 1 μm (denoted small-grain SLG), single-layer graphene of average gra

Materials ChemistryMaterials Science
14
논문|인용수 101·2016
Triboelectric Nanogenerator Accelerates Highly Efficient Nonviral Direct Conversion and In Vivo Reprogramming of Fibroblasts to Functional Neuronal Cells
Yoonhee Jin, Jungmok Seo, Jung Seung Lee, Sera Shin, Hyun‐Ji Park, Sungjin Min, Eunji Cheong, Taeyoon Lee, Seung‐Woo Cho
SJR Q1Advanced Materials

Triboelectric nanogenerators (TENGs) can be an effective cell reprogramming platform for producing functional neuronal cells for therapeutic applications. Triboelectric stimulation accelerates nonviral direct conversion of functional induced neuronal cells from fibroblasts, increases the conversion efficiency, and induces highly matured neuronal phenotypes with improved electrophysiological functionalities. TENG devices may also be used for biomedical in vivo reprogramming.

Biomedical EngineeringEngineering
15
논문|인용수 100·2017
Single-Droplet Multiplex Bioassay on a Robust and Stretchable Extreme Wetting Substrate through Vacuum-Based Droplet Manipulation
Heetak Han, Jung Seung Lee, Hyunchul Kim, Sera Shin, Jaehong Lee, Jongchan Kim, Xu Hou, Seung‐Woo Cho, Jungmok Seo, Taeyoon Lee
SJR Q1ACS Nano

Herein, a droplet manipulation system with a superamphiphobic (SPO)-superamphiphilic (SPI) patterned polydimethylsiloxane (PDMS) substrate is developed for a multiplex bioassay from single-droplet samples. The SPO substrate is fabricated by sequential spraying of adhesive and fluorinated silica nanoparticles onto a PDMS substrate. It is subsequently subjected to oxygen plasma with a patterned mask to form SPI patterns. The SPO layer exhibits extreme liquid repellency with a high contact angle (>

Biomedical EngineeringEngineering

대표 연구 분야

Biomedical EngineeringElectrical and Electronic EngineeringRenewable Energy, Sustainability and the EnvironmentMaterials ChemistryMechanics of MaterialsSurfaces, Coatings and Films

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