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Neung Lee

Sungkyunkwan University · 工学

研究室紹介

Professor Neung Lee's research lab specializes in the development of advanced flexible and stretchable electronic systems for wearable and implantable biomedical applications. The lab focuses on designing multifunctional, transparent, and ultrasensitive sensors using novel nanomaterials such as single-wall carbon nanotubes, conductive polymers, and silver nanowires, enabling real-time monitoring of human physiological signals and movements. Key research directions include intrinsically stretchable electronics, self-powered sensor platforms, and integrated wearable systems for point-of-care diagnostics and human-activity recognition.

stretchable electronicswearable sensorsnanomaterialsbiomedical monitoringself-powered devices

Research Overview

Papers
390
Total Citations
18,752
Papers (5y)
41
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
41total
2022
2023
2024
2025
2026
Citations per year (5y)
2,167total
20222023202420252026

Selected Papers

15
1
Article|2,078 citations·2016
Flexible and Stretchable Physical Sensor Integrated Platforms for Wearable Human‐Activity Monitoringand Personal Healthcare
Tran Quang Trung, Nae‐Eung Lee
SJR Q1Advanced Materials

Flexible and stretchable physical sensors that can measure and quantify electrical signals generated by human activities are attracting a great deal of attention as they have unique characteristics, such as ultrathinness, low modulus, light weight, high flexibility, and stretchability. These flexible and stretchable physical sensors conformally attached on the surface of organs or skin can provide a new opportunity for human-activity monitoring and personal healthcare. Consequently, in recent ye

Biomedical EngineeringEngineering
2
Article|916 citations·2015
Stretchable, Transparent, Ultrasensitive, and Patchable Strain Sensor for Human–Machine Interfaces Comprising a Nanohybrid of Carbon Nanotubes and Conductive Elastomers
Eun Roh, Byeong‐Ung Hwang, Doil Kim, Bo‐Yeong Kim, Nae‐Eung Lee
SJR Q1ACS Nano

Interactivity between humans and smart systems, including wearable, body-attachable, or implantable platforms, can be enhanced by realization of multifunctional human-machine interfaces, where a variety of sensors collect information about the surrounding environment, intentions, or physiological conditions of the human to which they are attached. Here, we describe a stretchable, transparent, ultrasensitive, and patchable strain sensor that is made of a novel sandwich-like stacked piezoresisitiv

Biomedical EngineeringEngineering
3
Article|863 citations·2015
An All‐Elastomeric Transparent and Stretchable Temperature Sensor for Body‐Attachable Wearable Electronics
Tran Quang Trung, Subramaniyan Ramasundaram, Byeong‐Ung Hwang, Nae‐Eung Lee
SJR Q1Advanced Materials

A transparent stretchable (TS) gated sensor array with high optical transparency, conformality, and high stretchability of up to 70% is demonstrated. The TS-gated sensor array has high responsivity to temperature changes in objects and human skin. This unprecedented TS-gated sensor array, as well as the integrated platform of the TS-gated sensor with a transparent and stretchable strain sensor, show great potential for application to wearable skin electronics for recognition of human activity.

Biomedical EngineeringEngineering
4
Article|498 citations·2015
Transparent Stretchable Self-Powered Patchable Sensor Platform with Ultrasensitive Recognition of Human Activities
Byeong‐Ung Hwang, Ju‐Hyuck Lee, Tran Quang Trung, Eun Roh, Do‐Il Kim, Sang‐Woo Kim, Nae‐Eung Lee
SJR Q1ACS Nano

Monitoring of human activities can provide clinically relevant information pertaining to disease diagnostics, preventive medicine, care for patients with chronic diseases, rehabilitation, and prosthetics. The recognition of strains on human skin, induced by subtle movements of muscles in the internal organs, such as the esophagus and trachea, and the motion of joints, was demonstrated using a self-powered patchable strain sensor platform, composed on multifunctional nanocomposites of low-density

Biomedical EngineeringEngineering
5
Review|493 citations·2020
Recent progress, challenges, and prospects of fully integrated mobile and wearable point-of-care testing systems for self-testing
Sajal Shrivastava, Tran Quang Trung, Nae‐Eung Lee
SJR Q1Chemical Society Reviews

The rapid growth of research in the areas of chemical and biochemical sensors, lab-on-a-chip, mobile technology, and wearable electronics offers an unprecedented opportunity in the development of mobile and wearable point-of-care testing (POCT) systems for self-testing. Successful implementation of such POCT technologies leads to minimal user intervention during operation to reduce user errors; user-friendly, easy-to-use and simple detection platforms; high diagnostic sensitivity and specificity

Biomedical EngineeringEngineering
6
Article|487 citations·2016
Recent Progress on Stretchable Electronic Devices with Intrinsically Stretchable Components
Tran Quang Trung, Nae‐Eung Lee
SJR Q1Advanced Materials

Stretchable electronic devices with intrinsically stretchable components have significant inherent advantages, including simple fabrication processes, a high integrity of the stacked layers, and low cost in comparison with stretchable electronic devices based on non-stretchable components. The research in this field has focused on developing new intrinsically stretchable components for conductors, semiconductors, and insulators. New methodologies and fabrication processes have been developed to

Biomedical EngineeringEngineering
7
Article|433 citations·2013
A Flexible Bimodal Sensor Array for Simultaneous Sensing of Pressure and Temperature
Nguyễn Thành Tiên, Sanghun Jeon, Do‐Il Kim, Tran Quang Trung, Mi Jang, Byeong‐Ung Hwang, Kyung‐Eun Byun, Jihyun Bae, Eunha Lee, Jeffrey B.‐H. Tok, Zhenan Bao, Nae‐Eung Lee
SJR Q1Advanced Materials

Diverse signals generated from the sensing elements embedded in flexible electronic skins (e-skins) are typically interfered by strain energy generated through processes such as touching, bending, stretching or twisting. Herein, we demonstrate a flexible bimodal sensor that can separate a target signal from the signal by mechanical strain through the integration of a multi-stimuli responsive gate dielectric and semiconductor channel into the single field-effect transistor (FET) platform.

Biomedical EngineeringEngineering
8
Review|304 citations·2019
Gas sensing with heterostructures based on two-dimensional nanostructured materials: a review
Atanu Bag, Nae‐Eung Lee
SJR Q1Journal of Materials Chemistry C

Advancement, challenges, and prospects in 2D–<italic>n</italic>D (where <italic>n</italic> is 0, 1, 2 or 3) heterostructures for gas sensing applications.

Electrical and Electronic EngineeringEngineering
9
Article|253 citations·2015
High-performance flexible lead-free nanocomposite piezoelectric nanogenerator for biomechanical energy harvesting and storage
Saqib Siddiqui, Do‐Il Kim, Le Thai Duy, Minh Triet Nguyen, Shoaib Muhammad, Won‐Sub Yoon, Nae‐Eung Lee
SJR Q1Nano Energy
Biomedical EngineeringEngineering
10
Article|249 citations·2017
Transparent, stretchable, and rapid-response humidity sensor for body-attachable wearable electronics
Tran Quang Trung, Le Thai Duy, Subramanian Ramasundaram, Nae‐Eung Lee
SJR Q1Nano Research

Stretchable and conformal humidity sensors that can be attached to the human body for continuously monitoring the humidity of the environment around the human body or the moisture level of the human skin can play an important role in electronic skin and personal healthcare applications. However, most stretchable humidity sensors are based on the geometric engineering of non-stretchable components and only a few detailed studies are available on stretchable humidity sensors under applied mechanic

Biomedical EngineeringEngineering
11
Article|230 citations·2018
Freestanding, Fiber‐Based, Wearable Temperature Sensor with Tunable Thermal Index for Healthcare Monitoring
Tran Quang Trung, Le Hoang Sinh, Thi My Linh Dang, Sanghyun Ju, Sang Yoon Park, Nae‐Eung Lee
SJR Q1Advanced Healthcare Materials

Fiber-based sensors integrated on textiles or clothing systems are required for the next generation of wearable electronic platforms. Fiber-based physical sensors are developed, but the development of fiber-based temperature sensors is still limited. Herein, a new approach to develop wearable temperature sensors that use freestanding single reduction graphene oxide (rGO) fiber is proposed. A freestanding and wearable temperature-responsive rGO fiber with tunable thermal index is obtained using s

Biomedical EngineeringEngineering
12
Article|220 citations·2012
Reduced graphene oxide field-effect transistor for label-free femtomolar protein detection
Duck-Jin Kim, Il Yung Sohn, Jin‐Heak Jung, Ok Ja Yoon, Nae‐Eung Lee, Joon‐Shik Park
SJR Q1Biosensors and Bioelectronics
Materials ChemistryMaterials Science
13
Article|210 citations·2021
Recent Advancements in Development of Wearable Gas Sensors
Atanu Bag, Nae‐Eung Lee
SJR Q1Advanced Materials Technologies

Abstract In the era of the Internet of Things, wearable technologies are expected to become an indispensable part of daily life. In recent times, highly sensitive, flexible, and stretchable electronic gas sensors are gaining tremendous interest due to their applicability in wearable electronics applications. The construction of wearable gas sensors are reviewed for real‐time, highly sensitive, and selective detection of hazardous gases at room temperature (RT) that can be laminated onto a human

Electrical and Electronic EngineeringEngineering
14
Article|209 citations·2020
A flexible artificial intrinsic-synaptic tactile sensory organ
Yu Rim Lee, Tran Quang Trung, Byeong‐Ung Hwang, Nae‐Eung Lee
SJR Q1Nature CommunicationsOA

Imbuing bio-inspired sensory devices with intelligent functions of human sensory organs has been limited by challenges in emulating the preprocessing abilities of sensory organs such as reception, filtering, adaptation, and sensory memory at the device level itself. Merkel cells, which is a part of tactile sensory organs, form synapse-like connections with afferent neuron terminals referred to as Merkel cell-neurite complexes. Here, inspired by structure and intelligent functions of Merkel cell-

Electrical and Electronic EngineeringEngineering
15
Article|209 citations·2019
Fully Stretchable Capillary Microfluidics-Integrated Nanoporous Gold Electrochemical Sensor for Wearable Continuous Glucose Monitoring
Chan Wool Bae, Phan Tan Toi, Bo Yeong Kim, Won Il Lee, Han Byeol Lee, Adeela Hanif, Eung Hyuk Lee, Nae‐Eung Lee
SJR Q1ACS Applied Materials & Interfaces

Biosensor systems for wearable continuous monitoring are desired to be developed into conformal patch platforms. However, developing such patches is very challenging owing to the difficulty of imparting materials and components with both high stretchability and high performance. Herein, we report a fully stretchable microfluidics-integrated glucose sensor patch comprised of an omnidirectionally stretchable nanoporous gold (NPG) electrochemical biosensor and a stretchable passive microfluidic dev

Biomedical EngineeringEngineering

Research Areas

Electrical and Electronic EngineeringBiomedical EngineeringMaterials ChemistryElectronic, Optical and Magnetic MaterialsAtomic and Molecular Physics, and OpticsMolecular Biology

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