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Seungwoo Lee

Korea Advanced Institute of Science and Technology · Neuroscience

About the Lab

Professor Seungwoo Lee's research lab specializes in the development of advanced implantable neuroprosthetic devices, focusing on miniaturized, magnetic, and wireless stimulation technologies for treating neurological disorders. The lab pioneers sub-millimeter microcoils for precise neural activation, monolithic encapsulation using liquid crystal polymers for biocompatible and MRI-compatible devices, and scalable nanomaterials such as platinum nanorods for high-fidelity neural recording and stimulation. Key research directions include overcoming the limitations of traditional electrode-based implants through innovative materials, microfabrication, and energy-efficient wireless power delivery systems.

neural prostheticsmicrocoilsimplantable deviceswireless stimulationbiocompatible encapsulation

Research Overview

Papers
47
Total Citations
1,223
Papers (5y)
10
Primary Field
Neuroscience

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
10total
2021
2022
2023
2024
2025
Citations per year (5y)
183total
20212022202320242025

Selected Papers

15
1
Article|185 citations·2012
Microscopic magnetic stimulation of neural tissue
Giorgio Bonmassar, Seung Woo Lee, D. Freeman, Miloslav Polášek, Shelley I. Fried, John T. Gale
SJR Q1Nature CommunicationsOA

Electrical stimulation is currently used to treat a wide range of cardiovascular, sensory and neurological diseases. Despite its success, there are significant limitations to its application, including incompatibility with magnetic resonance imaging, limited control of electric fields and decreased performance associated with tissue inflammation. Magnetic stimulation overcomes these limitations but existing devices (that is, transcranial magnetic stimulation) are large, reducing their translatio

Cellular and Molecular NeuroscienceNeuroscience
2
Article|152 citations·2016
Implantable microcoils for intracortical magnetic stimulation
Seung Woo Lee, Florian Fallegger, B. D. F. Casse, Shelley I. Fried
SJR Q1Science AdvancesOA

Neural prostheses that stimulate the neocortex have the potential to treat a wide range of neurological disorders. However, the efficacy of electrode-based implants remains limited, with persistent challenges that include an inability to create precise patterns of neural activity as well as difficulties in maintaining response consistency over time. These problems arise from fundamental limitations of electrodes as well as their susceptibility to implantation and have proven difficult to overcom

Cellular and Molecular NeuroscienceNeuroscience
3
Article|100 citations·2011
Monolithic Encapsulation of Implantable Neuroprosthetic Devices Using Liquid Crystal Polymers
Seung Woo Lee, Kyou Sik Min, Joonsoo Jeong, Jung‐Hoon Kim, Sung June Kim
SJR Q1IEEE Transactions on Biomedical Engineering

Flexible polymers have gained much attention in the development of low cost, magnetic resonance compatible, and nonfragile implantable medical devices. However, efficacy of the conventional polymer encapsulations containing hybrid interfaces is limited due to their relatively high moisture absorption and unstable interfacial adhesion in aqueous environments. As an alternative, we report on a monolithic encapsulation platform for neuroprosthetic devices using liquid crystal polymers (LCPs), which

Cellular and Molecular NeuroscienceNeuroscience
4
Article|85 citations·2019
Selective Formation of Porous Pt Nanorods for Highly Electrochemically Efficient Neural Electrode Interfaces
Mehran Ganji, Angelique C. Paulk, Jimmy C. Yang, Nasim W. Vahidi, Sang Heon Lee, Ren Liu, Lorraine Hossain, Ezequiel M. Arneodo, Martin Thunemann, Michiko Shigyo, Atsunori Tanaka, Sang Baek Ryu
SJR Q1Nano LettersOA

The enhanced electrochemical activity of nanostructured materials is readily exploited in energy devices, but their utility in scalable and human-compatible implantable neural interfaces can significantly advance the performance of clinical and research electrodes. We utilize low-temperature selective dealloying to develop scalable and biocompatible one-dimensional platinum nanorod (PtNR) arrays that exhibit superb electrochemical properties at various length scales, stability, and biocompatibil

Materials ChemistryMaterials Science
5
Review|82 citations·2021
MEMS inductor fabrication and emerging applications in power electronics and neurotechnologies
Hoa Thanh Le, Rubaiyet Iftekharul Haque, Ziwei Ouyang, Seung Woo Lee, Shelley I. Fried, Ding Zhao, Min Qiu, Anpan Han
SJR Q1Microsystems & NanoengineeringOA

MEMS inductors are used in a wide range of applications in micro- and nanotechnology, including RF MEMS, sensors, power electronics, and Bio-MEMS. Fabrication technologies set the boundary conditions for inductor design and their electrical and mechanical performance. This review provides a comprehensive overview of state-of-the-art MEMS technologies for inductor fabrication, presents recent advances in 3D additive fabrication technologies, and discusses the challenges and opportunities of MEMS

Electrical and Electronic EngineeringEngineering
6
Article|74 citations·2017
A Sub-millimeter, Inductively Powered Neural Stimulator
D. Freeman, Jonathan M. O’Brien, Parshant Kumar, Brian Daniels, Reed A. Irion, Louis Shraytah, Brett K. Ingersoll, Andrew P. Magyar, Andrew Czarnecki, Jesse Wheeler, Jonathan Coppeta, Michael P. Abban
SJR Q2Frontiers in NeuroscienceOA

Wireless neural stimulators are being developed to address problems associated with traditional lead-based implants. However, designing wireless stimulators on the sub-millimeter scale (<1 mm<sup>3</sup>) is challenging. As device size shrinks, it becomes difficult to deliver sufficient wireless power to operate the device. Here, we present a sub-millimeter, inductively powered neural stimulator consisting only of a coil to receive power, a capacitor to tune the resonant frequency of the receive

Cellular and Molecular NeuroscienceNeuroscience
7
Article|68 citations·2012
In Vitro Biocompatibility of Various Polymer-Based Microelectrode Arrays for Retinal Prosthesis
So Hyun Bae, Jeong-Hwan Che, Jong-Mo Seo, Joonsoo Jeong, Eui‐Tae Kim, Seung Woo Lee, Kyo-in Koo, Gregg J. Suaning, Nigel H. Lovell, Dong‐il Cho, Sung June Kim, Hum Chung
SJR Q1Investigative Ophthalmology & Visual Science

All types of polymer-based MEAs, including silicone/platinum, polyimide/gold, and LCP/gold MEAs, meet the criteria of biocompatibility guided by international standards, ISO 10993-5.

Cellular and Molecular NeuroscienceNeuroscience
8
Article|63 citations·2016
Enhanced Control of Cortical Pyramidal Neurons With Micromagnetic Stimulation
Seung Woo Lee, Shelley I. Fried
SJR Q1IEEE Transactions on Neural Systems and Rehabilitation EngineeringOA

Magnetic stimulation is less sensitive to the inflammatory reactions that plague conventional electrode-based cortical implants and therefore may be useful as a next-generation (implanted) cortical prosthetic. The fields arising from micro-coils are quite small however and thus, their ability to modulate cortical activity must first be established. Here, we show that layer V pyramidal neurons (PNs) can be strongly activated by micro-coil stimulation and further, the asymmetric fields arising fro

Cellular and Molecular NeuroscienceNeuroscience
9
Article|49 citations·2021
Microscale Physiological Events on the Human Cortical Surface
Angelique C. Paulk, Jimmy C. Yang, Daniel R. Cleary, Daniel J. Soper, Mila Halgren, Alexandra R. O’Donnell, Sang‐Heon Lee, Mehran Ganji, Yun Goo Ro, Hongseok Oh, Lorraine Hossain, Jihwan Lee
SJR Q1Cerebral CortexOA

Despite ongoing advances in our understanding of local single-cellular and network-level activity of neuronal populations in the human brain, extraordinarily little is known about their "intermediate" microscale local circuit dynamics. Here, we utilized ultra-high-density microelectrode arrays and a rare opportunity to perform intracranial recordings across multiple cortical areas in human participants to discover three distinct classes of cortical activity that are not locked to ongoing natural

Cognitive NeuroscienceNeuroscience
10
Article|49 citations·2013
Responses to pulsatile subretinal electric stimulation: effects of amplitude and duration
Seung Woo Lee, Donald K. Eddington, Shelley I. Fried
SJR Q2Journal of NeurophysiologyOA

In working to improve the quality of visual percepts elicited by retinal prosthetics, considerable effort has been made to understand how retinal neurons respond to electric stimulation. Whereas responses arising from direct activation of retinal ganglion cells have been well studied, responses arising through indirect activation (e.g., secondary to activation of bipolar cells) are not as well understood. Here, we used cell-attached, patch-clamp recordings to measure the responses of rabbit gang

Cellular and Molecular NeuroscienceNeuroscience
11
Article|40 citations·2018
Micro-Coil Design Influences the Spatial Extent of Responses to Intracortical Magnetic Stimulation
Seung Woo Lee, Krishnan Thyagarajan, Shelley I. Fried
SJR Q1IEEE Transactions on Biomedical EngineeringOA

Our results show that how coil design influences the response of cortical neurons to stimulation and are an important step toward the development of next-generation cortical prostheses.

Cellular and Molecular NeuroscienceNeuroscience
12
Article|36 citations·2012
Ephrin‐A3 Suppresses Wnt Signaling to Control Retinal Stem Cell Potency
Yuan Fang, Kin‐Sang Cho, Kissaou Tchedre, Seung Woo Lee, Chenying Guo, Hikaru Kinouchi, Shelley I. Fried, Xinghuai Sun, Dong Feng Chen
SJR Q1Stem CellsOA

The ciliary epithelium (CE) of adult mammals has been reported to provide a source of retinal stem cells (RSCs) that can give rise to all retinal cell types in vitro. A recent study, however, suggests that CE-derived cells possess properties of pigmented ciliary epithelial cells and display little neurogenic potential. Here we show that the neurogenic potential of CE-derived cells is negatively regulated by ephrin-A3, which is upregulated in the CE of postnatal mice and presents a strong prohibi

Molecular BiologyBiochemistry, Genetics and Molecular Biology
13
Article|35 citations·2014
Suppression of Subthalamic Nucleus Activity by Micromagnetic Stimulation
Seung Woo Lee, Shelley I. Fried
SJR Q1IEEE Transactions on Neural Systems and Rehabilitation Engineering

Magnetic stimulation delivered via 0.5-mm diameter coils was recently shown to activate retinal neurons; the small coil size raises the possibility that micromagnetic stimulation ( μMS) could underlie a new generation of implanted neural prosthetics. Such an approach has several inherent advantages over conventional electric stimulation, including the potential for selective activation of neuronal targets as well as less susceptibility to inflammatory responses. The viability of μMS for some app

Cellular and Molecular NeuroscienceNeuroscience
14
Article|18 citations·2014
The response of L5 pyramidal neurons of the PFC to magnetic stimulation from a micro-coil
Seung Woo Lee, Shelley I. Fried

Magnetic stimulation of the nervous system, e.g. transcranial magnetic stimulation (TMS), has been used both to unravel basic structure and function of the nervous system as well as to treat neurological diseases, i.e. clinical depression. Despite progress in both areas, ongoing advancements have been limited by a lack of understanding of the mechanism by which magnetic stimulation alters neural activity. Here, we report responses of cortical neurons to magnetic stimulation arising from a sub-mi

NeurologyNeuroscience
15
Article|17 citations·2020
Spatially confined responses of mouse visual cortex to intracortical magnetic stimulation from micro-coils
Sang Baek Ryu, Angelique C. Paulk, Jimmy C. Yang, Mehran Ganji, Shadi A. Dayeh, Sydney S. Cash, Shelley I. Fried, Seung Woo Lee
SJR Q1Journal of Neural EngineeringOA

OBJECTIVE: Electrical stimulation via microelectrodes implanted in cortex has been suggested as a potential treatment for a wide range of neurological disorders. Despite some success however, the effectiveness of conventional electrodes remains limited, in part due to an inability to create specific patterns of neural activity around each electrode and in part due to challenges with maintaining a stable interface. The use of implantable micro-coils to magnetically stimulate the cortex has the po

Cellular and Molecular NeuroscienceNeuroscience

Research Areas

Cellular and Molecular NeuroscienceCognitive NeuroscienceElectrical and Electronic EngineeringMolecular BiologyNeurologyMaterials Chemistry

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