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Seongjun Park

Seoul National University · 工学

研究室紹介

Professor Seongjun Park's research lab specializes in the development of advanced functional materials and devices for next-generation bioelectronics and nanoelectronics. The lab focuses on creating soft, biocompatible, and highly conductive materials—such as conductive hydrogels and multifunctional nanocomposite fibers—that mimic the mechanical and electrical properties of biological tissues. Key research directions include the design of implantable neural interfaces, stretchable optoelectronic sensors using quantum dots and graphene, and the controlled functionalization of carbon nanotubes and 2D materials for high-performance electronic applications. The lab integrates materials science, nanotechnology, and bioengineering to enable durable, high-performance devices for biomedical and electronic applications.

bioelectronicsconductive hydrogelsnanomaterialsstretchable electronics2D materials

Research Overview

Papers
334
Total Citations
14,923
Papers (5y)
78
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
78total
2022
2023
2024
2025
2026
Citations per year (5y)
1,789total
20222023202420252026

Selected Papers

15
1
Article|426 citations·2021
An artificial neural tactile sensing system
Sungwoo Chun, Jong-Seok Kim, Yongsang Yoo, Young In Choi, Sung Jun Jung, Dong‐Pyo Jang, Gwangyeob Lee, Kang‐Il Song, Kum Seok Nam, Inchan Youn, Donghee Son, Changhyun Pang
SJR Q1Nature Electronics
Biomedical EngineeringEngineering
2
Article|392 citations·2017
One-step optogenetics with multifunctional flexible polymer fibers
Seongjun Park, Yuanyuan Guo, Xiaoting Jia, Han Kyoung Choe, Benjamin Grena, Jeewoo Kang, Jiyeon Park, Chi Lu, Andrés Canales, Ritchie Chen, Yeong Shin Yim, Gloria B. Choi
SJR Q1Nature NeuroscienceOA
Cellular and Molecular NeuroscienceNeuroscience
3
Article|295 citations·2021
Adaptive and multifunctional hydrogel hybrid probes for long-term sensing and modulation of neural activity
Seongjun Park, Hyunwoo Yuk, Ruike Renee Zhao, Yeong Shin Yim, Eyob W. Woldeghebriel, Jeewoo Kang, Andrés Canales, Yoel Fink, Gloria B. Choi, Xuanhe Zhao, Polina Anikeeva
SJR Q1Nature CommunicationsOA

To understand the underlying mechanisms of progressive neurophysiological phenomena, neural interfaces should interact bi-directionally with brain circuits over extended periods of time. However, such interfaces remain limited by the foreign body response that stems from the chemo-mechanical mismatch between the probes and the neural tissues. To address this challenge, we developed a multifunctional sensing and actuation platform consisting of multimaterial fibers intimately integrated within a

Cellular and Molecular NeuroscienceNeuroscience
4
Article|246 citations·2023
Highly conductive tissue-like hydrogel interface through template-directed assembly
Jooyeun Chong, Changhoon Sung, Kum Seok Nam, Taewon Kang, Hyunjun Kim, Haeseung Lee, Hyunchang Park, Seongjun Park, Jiheong Kang
SJR Q1Nature CommunicationsOA

Abstract Over the past decade, conductive hydrogels have received great attention as tissue-interfacing electrodes due to their soft and tissue-like mechanical properties. However, a trade-off between robust tissue-like mechanical properties and good electrical properties has prevented the fabrication of a tough, highly conductive hydrogel and limited its use in bioelectronics. Here, we report a synthetic method for the realization of highly conductive and mechanically tough hydrogels with tissu

Biomedical EngineeringEngineering
5
Article|214 citations·2007
Directed Assembly of Lamellae‐ Forming Block Copolymers by Using Chemically and Topographically Patterned Substrates
Seongjun Park, Mark P. Stoykovich, Ricardo Ruiz, Y. Zhang, Charles T. Black, Paul F. Nealey
SJR Q1Advanced Materials

Lamellae-forming polystyrene-block-poly(methyl methacrylate) films were directed to assemble with perpendicularly oriented domains and long-range order in confining grooves (see figure), with preferential and neutral wetting in sidewalls and bottoms, respectively. The assembled films were highly amenable for pattern transfer by reactive-ion etching.

Materials ChemistryMaterials Science
6
Article|201 citations·2003
Generalized Chemical Reactivity of Curved Surfaces: Carbon Nanotubes
Seongjun Park, Deepak Srivastava, Kyeongjae Cho
SJR Q1Nano Letters

We have developed a model to predict the chemical reactivity of carbon nanotubes (CNTs) quantitatively from their initial structures. The parameters, universal for each reaction, of the model can be obtained from a graphene sheet analysis. The chemical reactivity of hydrogenation, hydroxylation, and fluorination were predicted within 0.1−0.3 eV errors, compared with first principle simulation results. The model also predicted the enhanced chemical reactivity of mechanically bent CNTs. The predic

Materials ChemistryMaterials Science
7
Article|193 citations·2020
An Atomically Thin Optoelectronic Machine Vision Processor
Houk Jang, Chengye Liu, Henry Hinton, Min‐Hyun Lee, Haeryong Kim, Minsu Seol, Hyeon‐Jin Shin, Seongjun Park, Donhee Ham
SJR Q1Advanced Materials

Abstract 2D semiconductors, especially transition metal dichalcogenide (TMD) monolayers, are extensively studied for electronic and optoelectronic applications. Beyond intensive studies on single transistors and photodetectors, the recent advent of large‐area synthesis of these atomically thin layers has paved the way for 2D integrated circuits, such as digital logic circuits and image sensors, achieving an integration level of ≈100 devices thus far. Here, a decisive advance in 2D integrated cir

Electrical and Electronic EngineeringEngineering
8
Article|158 citations·2017
Fully Stretchable Optoelectronic Sensors Based on Colloidal Quantum Dots for Sensing Photoplethysmographic Signals
Tae‐Ho Kim, Chang‐Seok Lee, Sang-Won Kim, Jaehyun Hur, Sangmin Lee, Keun Wook Shin, Young-Zoon Yoon, Moon Kee Choi, Jiwoong Yang, Dae‐Hyeong Kim, Taeghwan Hyeon, Seongjun Park
SJR Q1ACS Nano

Flexible and stretchable optoelectronic devices can be potentially applied in displays, biosensors, biomedicine, robotics, and energy generation. The use of nanomaterials with superior optical properties such as quantum dots (QDs) is important in the realization of wearable displays and biomedical devices, but specific structural design as well as selection of materials should preferentially accompany this technology to realize stretchable forms of these devices. Here, we report stretchable opto

Biomedical EngineeringEngineering
9
Article|155 citations·2022
Rapid meniscus-guided printing of stable semi-solid-state liquid metal microgranular-particle for soft electronics
Gunhee Lee, Ye Rim Lee, Hanul Kim, Do A Kwon, Hyeonji Kim, Congqi Yang, Siyoung Q. Choi, Seongjun Park, Jae‐Woong Jeong, Steve Park, Steve Park, Steve Park
SJR Q1Nature CommunicationsOA

Liquid metal is being regarded as a promising material for soft electronics owing to its distinct combination of high electrical conductivity comparable to that of metals and exceptional deformability derived from its liquid state. However, the applicability of liquid metal is still limited due to the difficulty in simultaneously achieving its mechanical stability and initial conductivity. Furthermore, reliable and rapid patterning of stable liquid metal directly on various soft substrates at hi

Biomedical EngineeringEngineering
10
Review|143 citations·2019
Flexible fiber-based optoelectronics for neural interfaces
Seongjun Park, Gabriel Loke, Yoel Fink, Polina Anikeeva
SJR Q1Chemical Society ReviewsOA

Neurological and psychiatric conditions pose an increasing socioeconomic burden on our aging society. Our ability to understand and treat these conditions relies on the development of reliable tools to study the dynamics of the underlying neural circuits. Despite significant progress in approaches and devices to sense and modulate neural activity, further refinement is required on the spatiotemporal resolution, cell-type selectivity, and long-term stability of neural interfaces. Guided by the pr

Cellular and Molecular NeuroscienceNeuroscience
11
Article|125 citations·2016
Control of Triboelectrification by Engineering Surface Dipole and Surface Electronic State
Kyung‐Eun Byun, Yeonchoo Cho, Minsu Seol, Seongsu Kim, Sang‐Woo Kim, Hyeon‐Jin Shin, Seongjun Park, Sungwoo Hwang, Seongjun Park, Sungwoo Hwang
SJR Q1ACS Applied Materials & Interfaces

Although triboelectrification is a well-known phenomenon, fundamental understanding of its principle on a material surface has not been studied systematically. Here, we demonstrated that the surface potential, especially the surface dipoles and surface electronic states, governed the triboelectrification by controlling the surface with various electron-donating and -withdrawing functional groups. The functional groups critically affected the surface dipoles and surface electronic states followed

Biomedical EngineeringEngineering
12
Article|95 citations·2022
A Personalized Electronic Tattoo for Healthcare Realized by On‐the‐Spot Assembly of an Intrinsically Conductive and Durable Liquid‐Metal Composite
Gunhee Lee, Heejin Woo, Chanwoong Yoon, Congqi Yang, Jae‐Young Bae, Wonsik Kim, Do Hoon Lee, Heemin Kang, Seungmin Han, Seung‐Kyun Kang, Seongjun Park, Seongjun Park
SJR Q1Advanced Materials

Conventional electronic (e-) skins are a class of thin-film electronics mainly fabricated in laboratories or factories, which is incapable of rapid and simple customization for personalized healthcare. Here a new class of e-tattoos is introduced that can be directly implemented on the skin by facile one-step coating with various designs at multi-scale depending on the purpose of the user without a substrate. An e-tattoo is realized by attaching Pt-decorated carbon nanotubes on gallium-based liqu

Biomedical EngineeringEngineering
13
Review|87 citations·2020
Multimaterial and multifunctional neural interfaces: from surface-type and implantable electrodes to fiber-based devices
Changhoon Sung, Woojin Jeon, Kum Seok Nam, Yeji Kim, Haider Butt, Seongjun Park
SJR Q1Journal of Materials Chemistry B

Neural interfaces have enabled significant advancements in neuroscience and paved the way for clinical applications in the diagnosis, treatment, and prevention of neurological disorders. A variety of device modalities, such as electrical, chemical and optical neural interfacing, are required for the comprehensive monitoring and modulation of neural activity. The development of recent devices with multimodal functionalities has been driven by innovations in materials engineering, especially the u

Cellular and Molecular NeuroscienceNeuroscience
14
Article|85 citations·2015
Optogenetic control of nerve growth
Seongjun Park, Ryan A. Koppes, Ulrich P. Froriep, Xiaoting Jia, Anil Kumar H. Achyuta, Bryan McLaughlin, Polina Anikeeva
SJR Q1Scientific ReportsOA

Due to the limited regenerative ability of neural tissue, a diverse set of biochemical and biophysical cues for increasing nerve growth has been investigated, including neurotrophic factors, topography, and electrical stimulation. In this report, we explore optogenetic control of neurite growth as a cell-specific alternative to electrical stimulation. By investigating a broad range of optical stimulation parameters on dorsal root ganglia (DRGs) expressing channelrhodopsin 2 (ChR2), we identified

Cellular and Molecular NeuroscienceNeuroscience
15
Article|82 citations·2023
Conductance stable and mechanically durable bi-layer EGaIn composite-coated stretchable fiber for 1D bioelectronics
Gunhee Lee, Do Hoon Lee, Woojin Jeon, Ji‐Hwan Yoon, Kwangguk Ahn, Kum Seok Nam, Min Kyoung Kim, Jun Kyu Kim, Yong Hoe Koo, Jinmyoung Joo, WooChul Jung, Jaehong Lee
SJR Q1Nature CommunicationsOA

Deformable semi-solid liquid metal particles (LMP) have emerged as a promising substitute for rigid conductive fillers due to their excellent electrical properties and stable conductance under strain. However, achieving a compact and robust coating of LMP on fibers remains a persistent challenge, mainly due to the incompatibility of conventional coating techniques with LMP. Additionally, the limited durability and absence of initial electrical conductivity of LMP restrict their widespread applic

Biomedical EngineeringEngineering

Research Areas

Materials ChemistryBiomedical EngineeringElectrical and Electronic EngineeringCellular and Molecular NeuroscienceEpidemiologyInformation Systems

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