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Woo-Young Lee

Yonsei University · 工学

研究室紹介

Professor Woo-Young Lee's research lab specializes in the design and fabrication of advanced nanomaterials for energy and sensing applications, with a strong focus on palladium-based nanostructures for high-performance hydrogen sensors. The lab explores low-dimensional Pd nanostructures such as thin films, nanowires, and nanogap devices, leveraging nanofabrication techniques like elastomeric substrate stretching and sputtering to enhance sensitivity, response time, and reversibility. In addition, the lab investigates functional oxide and hybrid nanostructures—such as Fe₂O₃/SnO₂/rGO composites and Bi-Te core/shell nanowires—for applications in lithium-ion batteries and thermoelectric materials, emphasizing interface engineering to optimize electrical and thermal transport properties.

hydrogen sensorspalladium nanostructuresnanomaterialsenergy storageinterface engineering

Research Overview

Papers
424
Total Citations
8,510
Papers (5y)
81
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
81total
2022
2023
2024
2025
2026
Citations per year (5y)
708total
20222023202420252026

Selected Papers

15
1
Article|205 citations·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
2
Article|166 citations·1978
The Adoption of Export as an Innovative Strategy
Wooyoung Lee, John J. Brasch
SJR Q1Journal of International Business Studies
Strategy and ManagementBusiness, Management and Accounting
3
Article|163 citations·2011
Low-Dimensional Palladium Nanostructures for Fast and Reliable Hydrogen Gas Detection
Jin‐Seo Noh, Jun Min Lee, Wooyoung Lee
SJR Q1SensorsOA

Palladium (Pd) has received attention as an ideal hydrogen sensor material due to its properties such as high sensitivity and selectivity to hydrogen gas, fast response, and operability at room temperature. Interestingly, various Pd nanostructures that have been realized by recent developments in nanotechnologies are known to show better performance than bulk Pd. This review highlights the characteristic properties, issues, and their possible solutions of hydrogen sensors based on the low-dimens

Electrical and Electronic EngineeringEngineering
4
Article|147 citations·2008
On-Film Formation of Bi Nanowires with Extraordinary Electron Mobility
Wooyoung Shim, Jinhee Ham, Kyoung-Il Lee, Won Young Jeung, Mark Johnson, Wooyoung Lee
SJR Q1Nano Letters

A novel stress-induced method to grow semimetallic Bi nanowires along with an analysis of their transport properties is presented. Single crystalline Bi nanowires were found to grow on as-sputtered films after thermal annealing at 260-270 degrees C. This was facilitated by relaxation of stress between the film and the thermally oxidized Si substrate that originated from a mismatch of the thermal expansion. The diameter-tunable Bi nanowires can be produced by controlling the mean grain size of th

Materials ChemistryMaterials Science
5
Article|140 citations·2010
Hydrogen gas sensing performance of Pd–Ni alloy thin films
Eunsongyi Lee, Jun Min Lee, Eunyoung Lee, Jin‐Seo Noh, Jin Hyoun Joe, Bumsuk Jung, Wooyoung Lee
SJR Q2Thin Solid Films
Electrical and Electronic EngineeringEngineering
6
Article|138 citations·2011
Highly Mobile Palladium Thin Films on an Elastomeric Substrate: Nanogap‐Based Hydrogen Gas Sensors
Junmin Lee, Wooyoung Shim, Eunyeong Lee, Jin‐Seo Noh, Wooyoung Lee
SJR Q1Angewandte Chemie International Edition

MOTIFE chemical sensors: A novel, low-cost, scalable, and lithography-free but nanogap-based chemical sensing method is presented. This method, termed highly-mobile thin film on elastomer (MOTIFE), utilizes crack formation in a Pd and PdNi thin film generated by stretching the film on an elastomeric substrate to reliably and reproducibly provide highly sensitive H2 sensors.

BioengineeringChemical Engineering
7
Article|128 citations·2015
Highly sensitive gas sensor based on Al-doped ZnO nanoparticles for detection of dimethyl methylphosphonate as a chemical warfare agent simulant
Ran Ji Yoo, Sungmee Cho, Min-Jung Song, Wooyoung Lee
SJR Q1Sensors and Actuators B Chemical
Electrical and Electronic EngineeringEngineering
8
Review|128 citations·2021
Hydrogen Gas Sensors Using Palladium Nanogaps on an Elastomeric Substrate
Hyun‐Sook Lee, Jeongmin Kim, Hongjae Moon, Wooyoung Lee
SJR Q1Advanced Materials

Abstract With the recent reillumination of the hydrogen economy around the world, the demand for H 2 sensors is expected to increase rapidly. Due to safety issues caused by the highly flammable and explosive character of hydrogen gas (H 2 ), it is imperative to develop the sensors that can quickly and sensitively detect H 2 leaks. For the development of H 2 sensors, Pd‐based materials have been extensively used due to the high affinity of Pd metal for H 2 . Among Pd‐based H 2 sensors, Pd nanogap

Electrical and Electronic EngineeringEngineering
9
Article|119 citations·2014
Highly sensitive and selective H2 and NO2 gas sensors based on surface-decorated WO3 nanoigloos
Young-Seok Shim, Lihua Zhang, Do Hong Kim, Yeon Hoo Kim, You Rim Choi, Seung Hoon Nahm, Chong‐Yun Kang, Wooyoung Lee, Ho Won Jang
SJR Q1Sensors and Actuators B Chemical
Electrical and Electronic EngineeringEngineering
10
Article|117 citations·2010
Ultra-sensitive hydrogen gas sensors based on Pd-decorated tin dioxide nanostructures: Room temperature operating sensors
Jun Min Lee, Ji‐eun Park, Seri Kim, Seri Kim, Sol Kim, Sol Kim, Eunyoung Lee, Sung-Jin Kim, Sung-Jin Kim, Wooyoung Lee
SJR Q1International Journal of Hydrogen Energy
Electrical and Electronic EngineeringEngineering
11
Article|111 citations·2018
Enhanced acetone-sensing properties of pt-decorated al-doped ZnO nanoparticles
Aran Koo, Ran Ji Yoo, Sung Pil Woo, Hyun‐Sook Lee, Wooyoung Lee
SJR Q1Sensors and Actuators B Chemical
Electrical and Electronic EngineeringEngineering
12
Article|108 citations·2017
In situ analysis of SnO2/Fe2O3/RGO to unravel the structural collapse mechanism and enhanced electrical conductivity for lithium-ion batteries
Kangsoo Lee, Seoyoon Shin, Thomas Degen, Wooyoung Lee, Young Soo Yoon
SJR Q1Nano EnergyOA

Herein, we describe a microwave-assisted hydrothermal process to synthesize α-Fe2O3 nanotubes/SnO2 nanorods/reduced graphene oxide (FNT/S/RGO) for application as a high-performance anode in lithium-ion batteries (LIBs). The composite products exhibit anisotropic growth because of heteronucleation and the preferred orientation of SnO2. SnO2 nanorods on the FNT surfaces are converted into Sn metal during the alloying/dealloying reaction, which offers improved electrical conductivity. The FNT/S/RGO

Electrical and Electronic EngineeringEngineering
13
Article|102 citations·2018
Sensing of acetone by Al-doped ZnO
Ran Ji Yoo, Andreas T. Güntner, Yunji Park, Hyun Jun Rim, Hyun‐Sook Lee, Wooyoung Lee
SJR Q1Sensors and Actuators B Chemical
Electrical and Electronic EngineeringEngineering
14
Article|91 citations·2016
Highly selective detection of dimethyl methylphosphonate (DMMP) using CuO nanoparticles /ZnO flowers heterojunction
Ran Ji Yoo, Somi Yoo, Dong-mei Lee, Jeongmin Kim, Sungmee Cho, Wooyoung Lee
SJR Q1Sensors and Actuators B Chemical
Electrical and Electronic EngineeringEngineering
15
Article|88 citations·2015
Hollow Nanobarrels of α-Fe2O3 on Reduced Graphene Oxide as High-Performance Anode for Lithium-Ion Batteries
Kang Soo Lee, Seyong Park, Wooyoung Lee, Young Soo Yoon
SJR Q1ACS Applied Materials & Interfaces

Alpha-phase iron oxide nanoparticles (α-NPs), α-iron oxide hollow nanobarrels (α-HNBs), and α-HNBs on reduced graphene oxide (α-HNBs/RGO) for Li-ion batteries (LIBs) were synthesized by a time-efficient microwave method to improve the low electrical conductivity of iron oxide and exploit the porous structure of RGO, which prevents the volume expansion of α-Fe2O3 during the insertion/extraction. On the other hand, α-HNBs (∼200 nm in diameter, ∼360 nm in length) provide a short diffusion path for

Electrical and Electronic EngineeringEngineering

Research Areas

Electrical and Electronic EngineeringMaterials ChemistryElectronic, Optical and Magnetic MaterialsBiomedical EngineeringAtomic and Molecular Physics, and OpticsMechanical Engineering

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