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Jong‐Hyun Ahn

Yonsei University · 工学

研究室紹介

Professor Jong-Hyun Ahn's research lab specializes in the development of advanced flexible and stretchable electronic systems using high-performance nanomaterials such as graphene, transition metal dichalcogenides (e.g., MoS2), and III-V semiconductors. The lab focuses on innovative fabrication techniques—particularly transfer printing and wafer-scale synthesis—for integrating dissimilar materials into complex, three-dimensional electronic architectures. Key research directions include high-performance flexible transistors, wearable sensors, and energy-efficient, low-voltage logic circuits for next-generation wearable and implantable devices.

flexible electronicsgraphene2D materialsheterogeneous integrationwearable sensors

Research Overview

Papers
394
Total Citations
52,432
Papers (5y)
79
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
79total
2022
2023
2024
2025
2026
Citations per year (5y)
4,363total
20222023202420252026

Selected Papers

15
1
Article|8,014 citations·2010
Roll-to-roll production of 30-inch graphene films for transparent electrodes
Sukang Bae, Hyeongkeun Kim, Youngbin Lee, Xiangfan Xu, Jae-Sung Park, Yi Zheng, Jayakumar Balakrishnan, Lei Tian, Hye Ri Kim, Young Il Song, Young-Jin Kim, Kwang S. Kim
SJR Q1Nature NanotechnologyOA
Materials ChemistryMaterials Science
2
Article|1,665 citations·2008
Stretchable and Foldable Silicon Integrated Circuits
Dae‐Hyeong Kim, Jong‐Hyun Ahn, Won Mook Choi, Hoon‐Sik Kim, Tae‐Ho Kim, Jizhou Song, Yonggang Huang, Zhuangjian Liu, C. Lu, John A. Rogers
SJR Q1Science

We have developed a simple approach to high-performance, stretchable, and foldable integrated circuits. The systems integrate inorganic electronic materials, including aligned arrays of nanoribbons of single crystalline silicon, with ultrathin plastic and elastomeric substrates. The designs combine multilayer neutral mechanical plane layouts and "wavy" structural configurations in silicon complementary logic gates, ring oscillators, and differential amplifiers. We performed three-dimensional ana

Biomedical EngineeringEngineering
3
Article|1,359 citations·2012
Extremely efficient flexible organic light-emitting diodes with modified graphene anode
Tae-Hee Han, Youngbin Lee, Mi‐Ri Choi, Seonghoon Woo, Sang-Hoon Bae, Byung Hee Hong, Jong‐Hyun Ahn, Tae‐Woo Lee
SJR Q1Nature Photonics
Electrical and Electronic EngineeringEngineering
4
Article|1,124 citations·2010
Wafer-Scale Synthesis and Transfer of Graphene Films
Youngbin Lee, Sukang Bae, Houk Jang, Sukjae Jang, Shou-En Zhu, Sung Hyun Sim, Young Il Song, Byung Hee Hong, Jong‐Hyun Ahn
SJR Q1Nano LettersOA

We developed means to produce wafer scale, high-quality graphene films as large as 3 in. wafer size on Ni and Cu films under ambient pressure and transfer them onto arbitrary substrates through instantaneous etching of metal layers. We also demonstrated the applications of the large-area graphene films for the batch fabrication of field-effect transistor (FET) arrays and stretchable strain gauges showing extraordinary performances. Transistors showed the hole and electron mobilities of the devic

Materials ChemistryMaterials Science
5
Article|771 citations·2012
Graphene-based transparent strain sensor
Sang-Hoon Bae, Youngbin Lee, Bhupendra K. Sharma, Hak‐Joo Lee, Jae‐Hyun Kim, Jong‐Hyun Ahn
SJR Q1Carbon
Biomedical EngineeringEngineering
6
Article|700 citations·2016
Graphene‐Based Flexible and Stretchable Electronics
Houk Jang, Yong Ju Park, Xiang Chen, Tanmoy Das, Minseok Kim, Jong‐Hyun Ahn
SJR Q1Advanced Materials

Graphene provides outstanding properties that can be integrated into various flexible and stretchable electronic devices in a conventional, scalable fashion. The mechanical, electrical, and optical properties of graphene make it an attractive candidate for applications in electronics, energy-harvesting devices, sensors, and other systems. Recent research progress on graphene-based flexible and stretchable electronics is reviewed here. The production and fabrication methods used for target device

Biomedical EngineeringEngineering
7
Article|688 citations·2006
Heterogeneous Three-Dimensional Electronics by Use of Printed Semiconductor Nanomaterials
Jong‐Hyun Ahn, Hoon-Sik Kim, Keon Jae Lee, Seokwoo Jeon, Seong Jun Kang, Yugang Sun, Ralph G. Nuzzo, John A. Rogers
SJR Q1Science

We developed a simple approach to combine broad classes of dissimilar materials into heterogeneously integrated electronic systems with two- or three-dimensional layouts. The process begins with the synthesis of different semiconductor nanomaterials, such as single-walled carbon nanotubes and single-crystal micro- and nanoscale wires and ribbons of gallium nitride, silicon, and gallium arsenide on separate substrates. Repeated application of an additive, transfer printing process that uses soft

Biomedical EngineeringEngineering
8
Article|573 citations·2022
Bioinspired in-sensor visual adaptation for accurate perception
Fuyou Liao, Zheng Zhou, Beom Jin Kim, Jiewei Chen, Jingli Wang, Tianqing Wan, Yue Zhou, Anh Tuấn Hoàng, Cong Wang, Jinfeng Kang, Jong‐Hyun Ahn, Yang Chai
SJR Q1Nature Electronics
Materials ChemistryMaterials Science
9
Article|437 citations·2010
High-Performance Flexible Graphene Field Effect Transistors with Ion Gel Gate Dielectrics
Beom Joon Kim, Houk Jang, Seoung-Ki Lee, Byung Hee Hong, Jong‐Hyun Ahn, Jeong Ho Cho
SJR Q1Nano Letters

A high-performance low-voltage graphene field-effect transistor (FET) array was fabricated on a flexible polymer substrate using solution-processable, high-capacitance ion gel gate dielectrics. The high capacitance of the ion gel, which originated from the formation of an electric double layer under the application of a gate voltage, yielded a high on-current and low voltage operation below 3 V. The graphene FETs fabricated on the plastic substrates showed a hole and electron mobility of 203 +/-

Materials ChemistryMaterials Science
10
Article|418 citations·2016
MoS2‐Based Tactile Sensor for Electronic Skin Applications
Minhoon Park, Yong Ju Park, Xiang Chen, Yon‐Kyu Park, Minseok Kim, Jong‐Hyun Ahn
SJR Q1Advanced Materials

A conformal tactile sensor based on MoS2 and graphene is demonstrated. The MoS2 tactile sensor exhibits excellent sensitivity, high uniformity, and good repeatability in terms of various strains. In addition, the outstanding flexibility enables the MoS2 strain tactile sensor to be realized conformally on a finger tip. The MoS2 -based tactile sensor can be utilized for wearable electronics, such as electronic skin.

Biomedical EngineeringEngineering
11
Article|378 citations·2011
Stretchable Graphene Transistors with Printed Dielectrics and Gate Electrodes
Seoung-Ki Lee, Beom Joon Kim, Houk Jang, Sung Cheol Yoon, Changjin Lee, Byung Hee Hong, John A. Rogers, Jeong Ho Cho, Jong‐Hyun Ahn
SJR Q1Nano Letters

With the emergence of human interface technology, the development of new applications based on stretchable electronics such as conformal biosensors and rollable displays are required. However, the difficulty in developing semiconducting materials with high stretchability required for such applications has restricted the range of applications of stretchable electronics. Here, we present stretchable, printable, and transparent transistors composed of monolithically patterned graphene films. This m

Biomedical EngineeringEngineering
12
Article|373 citations·2023
Optoelectronic graded neurons for bioinspired in-sensor motion perception
Jiewei Chen, Zheng Zhou, Beom Jin Kim, Yue Zhou, Zhaoqing Wang, Tianqing Wan, Jian‐Min Yan, Jinfeng Kang, Jong‐Hyun Ahn, Yang Chai
SJR Q1Nature Nanotechnology
Cellular and Molecular NeuroscienceNeuroscience
13
Article|342 citations·2017
Graphene-Based Three-Dimensional Capacitive Touch Sensor for Wearable Electronics
Minpyo Kang, Jejung Kim, Bongkyun Jang, Youngcheol Chae, Jae‐Hyun Kim, Jong‐Hyun Ahn
SJR Q1ACS Nano

The development of input device technology in a conformal and stretchable format is important for the advancement of various wearable electronics. Herein, we report a capacitive touch sensor with good sensing capabilities in both contact and noncontact modes, enabled by the use of graphene and a thin device geometry. This device can be integrated with highly deformable areas of the human body, such as the forearms and palms. This touch sensor detects multiple touch signals in acute recordings an

Biomedical EngineeringEngineering
14
Review|256 citations·2023
2D Materials in Flexible Electronics: Recent Advances and Future Prospectives
Ajit K. Katiyar, Anh Tuấn Hoàng, Duo Xu, Juyeong Hong, B. Kim, Seunghyeon Ji, Jong‐Hyun Ahn
SJR Q1Chemical Reviews

Flexible electronics have recently gained considerable attention due to their potential to provide new and innovative solutions to a wide range of challenges in various electronic fields. These electronics require specific material properties and performance because they need to be integrated into a variety of surfaces or folded and rolled for newly formatted electronics. Two-dimensional (2D) materials have emerged as promising candidates for flexible electronics due to their unique mechanical,

Biomedical EngineeringEngineering
15
Article|254 citations·2018
Two-dimensional materials in functional three-dimensional architectures with applications in photodetection and imaging
Wonho Lee, Yuan Liu, Yongjun Lee, Bhupendra K. Sharma, Sachin M. Shinde, Seong Dae Kim, Kewang Nan, Zheng Yan, Mengdi Han, Yonggang Huang, Yihui Zhang, Jong‐Hyun Ahn
SJR Q1Nature CommunicationsOA

Abstract Efficient and highly functional three-dimensional systems that are ubiquitous in biology suggest that similar design architectures could be useful in electronic and optoelectronic technologies, extending their levels of functionality beyond those achievable with traditional, planar two-dimensional platforms. Complex three-dimensional structures inspired by origami, kirigami have promise as routes for two-dimensional to three-dimensional transformation, but current examples lack the nece

Mechanical EngineeringEngineering

Research Areas

Materials ChemistryBiomedical EngineeringElectrical and Electronic EngineeringAtomic and Molecular Physics, and OpticsCellular and Molecular NeurosciencePolymers and Plastics

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