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유기준 교수

Ki Jun Yu

연세대학교 전기전자공학부 · 공학

연구실 소개

유기준 교수의 연구실은 유연하고 생체친화적인 전자소재를 기반으로 한 신경 및 생체 신호 감지 기술을 핵심으로 연구를 진행하고 있습니다. 특히 뇌의 정밀한 신호 기록을 위한 초박공유연 전극 진열, 생체 분해 가능한 마이크로니들 기반 연속 혈당 모니터링 장치, 그리고 신축성 있는 에피더멀 온도 센서 등 고성능 생체전자 시스템을 개발하고 있습니다. 이는 뇌질환 치료, 당뇨 관리, 실시간 건강 모니터링 등 미래 의료의 핵심 기술로 이어질 전망입니다.

유연 전자소재생체전자신경 인터페이스생체 분해성 센서에피더멀 센서

연구 현황

논문 수
135
총 인용 수
16,949
최근 5년 논문
60
주요 분야
공학

연구 성과 추이

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

5개년 연도별 논문 게재 수
60총합
2022
2023
2024
2025
2026
5개년 연도별 피인용 수
1,835총합
20222023202420252026

주요 논문

15
1
논문|인용수 507·2016
Bioresorbable silicon electronics for transient spatiotemporal mapping of electrical activity from the cerebral cortex
Ki Jun Yu, Duygu Kuzum, Suk‐Won Hwang, Bong Hoon Kim, Halvor Juul, Nam Heon Kim, Sang Min Won, Ken Chiang, Michael Trumpis, Andrew G. Richardson, Huanyu Cheng, Hui Fang
SJR Q1Nature Materials
Cellular and Molecular NeuroscienceNeuroscience
2
논문|인용수 218·2020
Development of a neural interface for high-definition, long-term recording in rodents and nonhuman primates
Chia‐Han Chiang, Sang Min Won, Amy L. Orsborn, Ki Jun Yu, Michael Trumpis, Brinnae Bent, Charles Wang, Yeguang Xue, Seunghwan Min, Virginia Woods, Chunxiu Yu, Bong Hoon Kim
SJR Q1Science Translational MedicineOA

Long-lasting, high-resolution neural interfaces that are ultrathin and flexible are essential for precise brain mapping and high-performance neuroprosthetic systems. Scaling to sample thousands of sites across large brain regions requires integrating powered electronics to multiplex many electrodes to a few external wires. However, existing multiplexed electrode arrays rely on encapsulation strategies that have limited implant lifetimes. Here, we developed a flexible, multiplexed electrode array

Cognitive NeuroscienceNeuroscience
3
논문|인용수 209·2017
Inorganic semiconducting materials for flexible and stretchable electronics
Ki Jun Yu, Zheng Yan, Mengdi Han, John A. Rogers
SJR Q1npj Flexible ElectronicsOA

Abstract Recent progress in the synthesis and deterministic assembly of advanced classes of single crystalline inorganic semiconductor nanomaterial establishes a foundation for high-performance electronics on bendable, and even elastomeric, substrates. The results allow for classes of systems with capabilities that cannot be reproduced using conventional wafer-based technologies. Specifically, electronic devices that rely on the unusual shapes/forms/constructs of such semiconductors can offer me

Biomedical EngineeringEngineering
4
논문|인용수 155·2023
Fluorescent-based biodegradable microneedle sensor array for tether-free continuous glucose monitoring with smartphone application
Mingyu Sang, Myeongki Cho, Selin Lim, In Sik Min, Yuna Han, Chanwoo Lee, Jongwoon Shin, Kukro Yoon, Woon‐Hong Yeo, Taeyoon Lee, Sang Min Won, Youngmee Jung
SJR Q1Science AdvancesOA

Continuous glucose monitoring (CGM) allows patients with diabetes to manage critical disease effectively and autonomously and prevent exacerbation. A painless, wireless, compact, and minimally invasive device that can provide CGM is essential for monitoring the health conditions of freely moving patients with diabetes. Here, we propose a glucose-responsive fluorescence-based highly sensitive biodegradable microneedle CGM system. These ultrathin and ultralight microneedle sensor arrays continuous

Pharmaceutical SciencePharmacology, Toxicology and Pharmaceutics
5
논문|인용수 151·2021
Ultrahigh Sensitive Au‐Doped Silicon Nanomembrane Based Wearable Sensor Arrays for Continuous Skin Temperature Monitoring with High Precision
Mingyu Sang, Kyowon Kang, Yue Zhang, Haozhe Zhang, Kiho Kim, Myeongki Cho, Jongwoon Shin, Jung‐Hoon Hong, Taemin Kim, Shin Kyu Lee, Woon‐Hong Yeo, Jung Woo Lee
SJR Q1Advanced MaterialsOA

Abstract Monitoring the body temperature with high accuracy provides a fast, facile, yet powerful route about the human body in a wide range of health information standards. Here, the first ever ultrasensitive and stretchable gold‐doped silicon nanomembrane (Au‐doped SiNM) epidermal temperature sensor array is introduced. The ultrasensitivity is achieved by shifting freeze‐out region to intrinsic region in carrier density and modulation of fermi energy level of p‐type SiNM through the developmen

Biomedical EngineeringEngineering
6
리뷰|인용수 141·2022
Ultra‐Thin Flexible Encapsulating Materials for Soft Bio‐Integrated Electronics
Mingyu Sang, Kyubeen Kim, Jongwoon Shin, Ki Jun Yu
SJR Q1Advanced ScienceOA

Recently, bioelectronic devices extensively researched and developed through the convergence of flexible biocompatible materials and electronics design that enables more precise diagnostics and therapeutics in human health care and opens up the potential to expand into various fields, such as clinical medicine and biomedical research. To establish an accurate and stable bidirectional bio-interface, protection against the external environment and high mechanical deformation is essential for weara

Biomedical EngineeringEngineering
7
리뷰|인용수 134·2021
Emerging Materials and Technologies with Applications in Flexible Neural Implants: A Comprehensive Review of Current Issues with Neural Devices
Younguk Cho, Sanghoon Park, Juyoung Lee, Ki Jun Yu
SJR Q1Advanced MaterialsOA

Neuroscience is an essential field of investigation that reveals the identity of human beings, with a comprehensive understanding of advanced mental activities, through the study of neurobiological structures and functions. Fully understanding the neurotransmission system that allows for connectivity among neuronal circuits has paved the way for the development of treatments for neurodegenerative diseases such as Parkinson's disease, Alzheimer's disease, and depression. The field of flexible imp

Cellular and Molecular NeuroscienceNeuroscience
8
논문|인용수 129·2022
Ultrathin crystalline-silicon-based strain gauges with deep learning algorithms for silent speech interfaces
Taemin Kim, Yejee Shin, Kyowon Kang, Kiho Kim, Gwanho Kim, Yunsu Byeon, Hwayeon Kim, Yuyan Gao, Jeong Ryong Lee, Geonhui Son, Taeseong Kim, Yohan Jun
SJR Q1Nature CommunicationsOA

Abstract A wearable silent speech interface (SSI) is a promising platform that enables verbal communication without vocalization. The most widely studied methodology for SSI focuses on surface electromyography (sEMG). However, sEMG suffers from low scalability because of signal quality-related issues, including signal-to-noise ratio and interelectrode interference. Hence, here, we present a novel SSI by utilizing crystalline-silicon-based strain sensors combined with a 3D convolutional deep lear

Biomedical EngineeringEngineering
9
논문|인용수 104·2024
Bionic artificial skin with a fully implantable wireless tactile sensory system for wound healing and restoring skin tactile function
Kyowon Kang, Seongryeol Ye, Chanho Jeong, Jinmo Jeong, Yeong‐sinn Ye, Jin Young Jeong, Yu-Jin Kim, Selin Lim, Tae Hee Kim, Kyung Yeun Kim, Jong Uk Kim, Gwan In Kim
SJR Q1Nature CommunicationsOA

Tactile function is essential for human life as it enables us to recognize texture and respond to external stimuli, including potential threats with sharp objects that may result in punctures or lacerations. Severe skin damage caused by severe burns, skin cancer, chemical accidents, and industrial accidents damage the structure of the skin tissue as well as the nerve system, resulting in permanent tactile sensory dysfunction, which significantly impacts an individual's daily life. Here, we intro

Biomedical EngineeringEngineering
10
논문|인용수 91·2024
Extremely durable electrical impedance tomography–based soft and ultrathin wearable e-skin for three-dimensional tactile interfaces
Kyubeen Kim, Jung-Hoon Hong, Kyubin Bae, Kyounghun Lee, Doohyun J. Lee, J.-H. Park, Haozhe Zhang, Mingyu Sang, Jeong Eun Ju, Young Uk Cho, Kyowon Kang, Wonkeun Park
SJR Q1Science AdvancesOA

In the rapidly evolving field of human-machine interfaces (HMIs), high-resolution wearable electronic skin (e-skin) is essential for user interaction. However, traditional array-structured tactile interfaces require increased number of interconnects, while soft material-based computational methods have limited functionalities. Here, we introduce a thin and soft e-skin for tactile interfaces, offering high mapping capabilities through electrical impedance tomography (EIT). We employed an organic/

Biomedical EngineeringEngineering
11
논문|인용수 82·2021
Ultra‐Low Cost, Facile Fabrication of Transparent Neural Electrode Array for Electrocorticography with Photoelectric Artifact‐Free Optogenetics
Young Uk Cho, Ju Young Lee, Ui‐Jin Jeong, Sang‐Hoon Park, Se Lin Lim, Kyung Yeun Kim, Je Wu Jang, Jong Ho Park, Hyun Woo Kim, Hyogeun Shin, Hojeong Jeon, Young Mee Jung
SJR Q1Advanced Functional Materials

Abstract Transparent implantable devices have received significant attention in neuroscience and biomedical engineering by combining neural recording and optical modalities. Opaque, metal‐based electrode arrays for electrophysiology block optical imaging and cause photoelectric artifacts, making them difficult to integrate with optogenetics. Here, a photoelectric artifact‐free, highly conductive, and transparent poly(3,4‐ethylenedioxythiophene) polystyrene sulfonate (PEDOT:PSS) electrode array i

Cellular and Molecular NeuroscienceNeuroscience
12
논문|인용수 81·2024
Fully bioresorbable hybrid opto-electronic neural implant system for simultaneous electrophysiological recording and optogenetic stimulation
Myeongki Cho, Jeong-Kyu Han, Jungmin Suh, Jeong Jin Kim, Jae Ryun Ryu, In Sik Min, Mingyu Sang, Selin Lim, Tae Soo Kim, Kyubeen Kim, Kyowon Kang, Kyuhyun Hwang
SJR Q1Nature CommunicationsOA

Bioresorbable neural implants based on emerging classes of biodegradable materials offer a promising solution to the challenges of secondary surgeries for removal of implanted devices required for existing neural implants. In this study, we introduce a fully bioresorbable flexible hybrid opto-electronic system for simultaneous electrophysiological recording and optogenetic stimulation. The flexible and soft device, composed of biodegradable materials, has a direct optical and electrical interfac

Cellular and Molecular NeuroscienceNeuroscience
13
논문|인용수 76·2013
Light Trapping in Ultrathin Monocrystalline Silicon Solar Cells
Ki Jun Yu, Li Gao, Jae Suk Park, Yu Ri Lee, Christopher J. Corcoran, Ralph G. Nuzzo, Debashis Chanda, John A. Rogers
SJR Q1Advanced Energy MaterialsOA

Light-trapping schemes implemented with ultrathin, 3 μm thick silicon solar cells offer excellent opportunities for greatly enhanced absorption and corresponding improvements in efficiency of operation. Optically optimized cells of this type yield energy conversion efficiencies that are higher by ≈190% compared to otherwise identical cells that do not exploit light-trapping features, consistent with optical modeling results.

Electrical and Electronic EngineeringEngineering
14
논문|인용수 74·2021
Recent developments of emerging inorganic, metal and carbon-based nanomaterials for pressure sensors and their healthcare monitoring applications
Kyowon Kang, Jaejin Park, Kiho Kim, Ki Jun Yu
SJR Q1Nano Research

Recently, flexible pressure sensors have gained substantial research interest in bioelectronics because they can monitor the conditions of various organs, enable early diagnosis of diseases, and provide precise medical treatment by applying them to various parts of the body. In particular, inorganic materials, metal and carbon-based materials are broadly used in novel structured pressure sensors from wearable devices to implantable devices. With the excellent electronic properties, distinctive m

Biomedical EngineeringEngineering
15
리뷰|인용수 69·2018
Flexible and Stretchable Bio-Integrated Electronics Based on Carbon Nanotube and Graphene
Taemin Kim, Myeongki Cho, Ki Jun Yu
SJR Q2MaterialsOA

Scientific and engineering progress associated with increased interest in healthcare monitoring, therapy, and human-machine interfaces has rapidly accelerated the development of bio-integrated multifunctional devices. Recently, compensation for the cons of existing materials on electronics for health care systems has been provided by carbon-based nanomaterials. Due to their excellent mechanical and electrical properties, these materials provide benefits such as improved flexibility and stretchab

Biomedical EngineeringEngineering

대표 연구 분야

Biomedical EngineeringCellular and Molecular NeuroscienceElectrical and Electronic EngineeringMaterials ChemistryCognitive NeuroscienceHuman-Computer Interaction

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