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Jo Il-ju

Korea University · Neuroscience

About the Lab

Professor Jo Il-ju's research lab specializes in developing advanced implantable biomedical devices for neuroscience and brain-machine interface applications. The lab focuses on designing flexible, transparent, and multi-functional neural probes that integrate electrophysiological recording, chemical stimulation, and optogenetic compatibility to enable long-term, high-fidelity neural interfacing. Key research directions include microfabrication of neural implants using novel materials like PEDOT:PSS and silicon-based microsystems, as well as innovative actuation mechanisms for low-power MEMS switches and reduced tissue trauma during implantation. The lab emphasizes biocompatibility, signal stability, and multi-modal functionality to address chronic neural recording challenges.

neural probesimplantable devicesbiomedical microsystemschronic neural recordingmulti-modal stimulation

Research Overview

Papers
201
Total Citations
5,406
Papers (5y)
42
Primary Field
Neuroscience

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
42total
2022
2023
2024
2025
2026
Citations per year (5y)
766total
20222023202420252026

Selected Papers

15
1
Article|217 citations·2021
3D high-density microelectrode array with optical stimulation and drug delivery for investigating neural circuit dynamics
Hyogeun Shin, Sohyeon Jeong, Ju‐Hyun Lee, Woong Sun, Nakwon Choi, Il‐Joo Cho
SJR Q1Nature CommunicationsOA

Investigation of neural circuit dynamics is crucial for deciphering the functional connections among regions of the brain and understanding the mechanism of brain dysfunction. Despite the advancements of neural circuit models in vitro, technologies for both precisely monitoring and modulating neural activities within three-dimensional (3D) neural circuit models have yet to be developed. Specifically, no existing 3D microelectrode arrays (MEAs) have integrated capabilities to stimulate surroundin

Cellular and Molecular NeuroscienceNeuroscience
2
Article|169 citations·2019
Multifunctional multi-shank neural probe for investigating and modulating long-range neural circuits in vivo
Hyogeun Shin, Yoojin Son, Uikyu Chae, Jeongyeon Kim, Nakwon Choi, Hyunjoo J. Lee, Jiwan Woo, Yakdol Cho, Soo Hyun Yang, C. Justin Lee, Il‐Joo Cho
SJR Q1Nature CommunicationsOA

Investigation and modulation of neural circuits in vivo at the cellular level are very important for studying functional connectivity in a brain. Recently, neural probes with stimulation capabilities have been introduced, and they provided an opportunity for studying neural activities at a specific region in the brain using various stimuli. However, previous methods have a limitation in dissecting long-range neural circuits due to inherent limitations on their designs. Moreover, the large size o

Cellular and Molecular NeuroscienceNeuroscience
3
Article|118 citations·2005
A low-voltage and low-power RF MEMS series and shunt switches actuated by combination of electromagnetic and electrostatic forces
Il‐Joo Cho, Taeksang Song, Sang‐Hyun Baek, Euisik Yoon
SJR Q1IEEE Transactions on Microwave Theory and Techniques

This paper reports new RF microelectromechanical systems (MEMS) switches actuated by the combination of electromagnetic and electrostatic forces for low-voltage and low-power operation. The proposed RF MEMS switches have utilized the proper combination of two actuation mechanisms: taking advantage of the large actuation force from electromagnetic actuation for initial movement and the low-power feature from electrostatic actuation for holding the actuator position. Both series- and shunt-type sw

Electrical and Electronic EngineeringEngineering
4
Article|106 citations·2015
A multichannel neural probe with embedded microfluidic channels for simultaneous in vivo neural recording and drug delivery
Hyunjoo J. Lee, Yoojin Son, Jeongyeon Kim, C. Justin Lee, Eui-Sung Yoon, Il‐Joo Cho
SJR Q1Lab on a Chip

Multi-functional neural probes integrated with various stimulation modalities are becoming essential tools in neuroscience to study the brain more effectively. In this paper, we present a new multi-functional neural probe that allows chemical stimulation through drug delivery and simultaneous recording of individual neuron signals through a microelectrode array. By embedding microchannels in silicon using a proposed glass reflow process, we successfully fabricated 40 μm thick silicon neural prob

Cellular and Molecular NeuroscienceNeuroscience
5
Review|97 citations·2017
MEMS devices for drug delivery
Hyunjoo J. Lee, Nakwon Choi, Eui-Sung Yoon, Il‐Joo Cho
SJR Q1Advanced Drug Delivery Reviews
Pharmaceutical SciencePharmacology, Toxicology and Pharmaceutics
6
Article|82 citations·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
7
Article|81 citations·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
8
Article|75 citations·2015
Neural probes with multi-drug delivery capability
Hyogeun Shin, Hyunjoo J. Lee, Uikyu Chae, Huiyoung Kim, Jeongyeon Kim, Nakwon Choi, Jiwan Woo, Yakdol Cho, C. Justin Lee, Eui-Sung Yoon, Il‐Joo Cho
SJR Q1Lab on a Chip

Multi-functional neural probes are promising platforms to conduct efficient and effective in-depth studies of brain by recording neural signals as well as modulating the signals with various stimuli. Here we present a neural probe with an embedded microfluidic channel (chemtrode) with multi-drug delivery capability suitable for small animal experiments. We integrated a staggered herringbone mixer (SHM) in a 3-inlet microfluidic chip directly into our chemtrode. This chip, which also serves as a

Cellular and Molecular NeuroscienceNeuroscience
9
Article|73 citations·2021
A Lubricated Nonimmunogenic Neural Probe for Acute Insertion Trauma Minimization and Long‐Term Signal Recording
Yeontaek Lee, Hyogeun Shin, Dong‐Won Lee, Sungah Choi, Il‐Joo Cho, Jungmok Seo
SJR Q1Advanced ScienceOA

Brain-machine interfaces (BMIs) that link the brain to a machine are promising for the treatment of neurological disorders through the bi-directional translation of neural information over extended periods. However, the longevity of such implanted devices remains limited by the deterioration of their signal sensitivity over time due to acute inflammation from insertion trauma and chronic inflammation caused by the foreign body reaction. To address this challenge, a lubricated surface is fabricat

Cellular and Molecular NeuroscienceNeuroscience
10
Article|60 citations·2014
Partially flexible MEMS neural probe composed of polyimide and sucrose gel for reducing brain damage during and after implantation
Myounggun Jeon, Jeiwon Cho, Yun Kyung Kim, Dahee Jung, Eui-Sung Yoon, Sehyun Shin, Il‐Joo Cho
SJR Q2Journal of Micromechanics and MicroengineeringOA

This paper presents a flexible microelectromechanical systems (MEMS) neural probe that minimizes neuron damage and immune response, suitable for chronic recording applications. MEMS neural probes with various features such as high electrode densities have been actively investigated for neuron stimulation and recording to study brain functions. However, successful recording of neural signals in chronic application using rigid silicon probes still remains challenging because of cell death and macr

Cellular and Molecular NeuroscienceNeuroscience
11
Article|58 citations·2009
A low-voltage three-axis electromagnetically actuated micromirror for fine alignment among optical devices
Il‐Joo Cho, Euisik Yoon
SJR Q2Journal of Micromechanics and Microengineering

In this paper, a new three-axis electromagnetically actuated micromirror structure has been proposed and fabricated. It is electromagnetically actuated at low voltage using an external magnetic field. The main purpose of this work was to obtain a three-axis actuated micromirror in a mechanically robust structure with large static angular and vertical displacement at low actuation voltage for fine alignment among optical components in an active alignment module as well as conventional optical sys

Biomedical EngineeringEngineering
12
Article|54 citations·2015
A flexible multimodal tactile display for delivering shape and material information
Simon Gallo, Choonghyun Son, Hyunjoo J. Lee, Hannes Bleuler, Il‐Joo Cho
SJR Q1Sensors and Actuators A PhysicalOA
Cognitive NeuroscienceNeuroscience
13
Article|49 citations·2010
A 16-site neural probe integrated with a waveguide for optical stimulation
Il‐Joo Cho, Hyoung Won Baac, Euisik Yoon

In this paper, we report a neural probe which can selectively stimulate target neurons optically from an integrated optical waveguide and also monitor extracellular neural signals in electrical recording sites. The waveguide is composed of SU-8 core and oxide cladding layer to guide a light from optical source. A U-groove has been formed at the end of the waveguide for easy alignment with an optical fiber. The coupling loss between the optical fiber and waveguide has been measured below -3.7 dB

Cellular and Molecular NeuroscienceNeuroscience
14
Article|47 citations·2022
Neural probe system for behavioral neuropharmacology by bi-directional wireless drug delivery and electrophysiology in socially interacting mice
You-Sang Yoon, Hyogeun Shin, Donghak Byun, Jiwan Woo, Yakdol Cho, Nakwon Choi, Il‐Joo Cho
SJR Q1Nature CommunicationsOA

Assessing the neurological and behavioral effects of drugs is important in developing pharmacological treatments, as well as understanding the mechanisms associated with neurological disorders. Herein, we present a miniaturized, wireless neural probe system with the capability of delivering drugs for the real-time investigation of the effects of the drugs on both behavioral and neural activities in socially interacting mice. We demonstrate wireless drug delivery and simultaneous monitoring of th

Cellular and Molecular NeuroscienceNeuroscience
15
Article|45 citations·2022
Mechanically Tissue‐Like and Highly Conductive Au Nanoparticles Embedded Elastomeric Fiber Electrodes of Brain–Machine Interfaces for Chronic In Vivo Brain Neural Recording
Chihyeong Won, Ui‐Jin Jeong, Sanghyeon Lee, Minkyu Lee, Chaebeen Kwon, Sungjoon Cho, Kukro Yoon, Seung-Min Lee, Dong Won Chun, Il‐Joo Cho, Taeyoon Lee
SJR Q1Advanced Functional Materials

Abstract Implantable neural probes are a crucial part of brain–machine interfaces that serve as direct interacting routes between neural tissues and machines. The neural probes require both mechanical and electrical properties to acquire high‐quality signals from individual neurons with minimal tissue damage. However, overcoming the trade‐off between flexibility and electrical property is still challenging. Herein, a fiber neural probe, composed of core polymer and Au nanoparticles (AuNPs) on th

Cellular and Molecular NeuroscienceNeuroscience

Research Areas

Cellular and Molecular NeuroscienceBiomedical EngineeringElectrical and Electronic EngineeringCardiology and Cardiovascular MedicineMolecular BiologyMechanics of Materials

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