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Department of Robotics and Mechatronics Engineering
Bio-Micro Robotics Lab
1. Journal Articles
Optimized Coil Design for Enhanced Electric Field Induction in Peripheral Nerve Stimulation
Park, Jaeu
;
Lee, Kyeong Jae
;
Nagwade, Pritish
;
Jeong, Jinwoong
;
Park, Jeong Hoan
;
Choi, Hongsoo
;
Kim, Sohee
;
Lee, Sanghoon
Department of Robotics and Mechatronics Engineering
Bio-Micro Robotics Lab
1. Journal Articles
Department of Robotics and Mechatronics Engineering
Neural Interfaces & MicroSystems Lab
1. Journal Articles
Department of Robotics and Mechatronics Engineering
Neuro-Interfaced Robotics Lab
1. Journal Articles
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Title
Optimized Coil Design for Enhanced Electric Field Induction in Peripheral Nerve Stimulation
Issued Date
2025-08
Citation
IEEE Transactions on Neural Systems and Rehabilitation Engineering, v.33, pp.3225 - 3236
Type
Article
Author Keywords
Coil interface
;
peripheral nerve stimulation
;
magnetic stimulation
Keywords
TRANSCRANIAL MAGNETIC STIMULATION
;
REGENERATIVE ELECTRODES
;
PAIN
;
MANAGEMENT
;
PROSTHESES
;
INTERFACE
;
MODEL
ISSN
1534-4320
Abstract
Peripheral nerve electrical stimulation is widely used for the treatment of neuropathic pain and neural regeneration. However, it often induces adverse biological reactions and unintended activation of surrounding neural tissues. As an alternative, peripheral nerve magnetic stimulation offers a promising, less invasive approach that enables targeted nerve stimulation without direct tissue contact. Despite its potential, it is constrained by the bulkiness of coils and excessive heat generation due to the high currents required. To address these limitations, we conducted a study on coil design optimized for peripheral nerve modulation. Our approach, supported by simulations and animal experiments, focused on optimizing coil geometry to maximize the induced electric field gradient. Among various designs, a four-leaf rhombus-shaped coil demonstrated the highest gradient at the center of the interface. In rat sciatic nerve experiments, this coil, driven by a rectangular pulse with a 200 μs rise time and 25 V amplitude, successfully elicited compound muscle action potentials in both the tibial anterior and gastrocnemius muscles. This study presents design guidelines for peripheral nerve stimulation (PNS) coils based on magnetic stimulation as an alternative to conventional electrical stimulation. The proposed approach may serve as a foundation for the development of advanced, miniaturized, and energy-efficient neural stimulation coils. © 2025 Elsevier B.V., All rights reserved.
URI
https://scholar.dgist.ac.kr/handle/20.500.11750/59061
DOI
10.1109/TNSRE.2025.3599634
Publisher
Institute of Electrical and Electronics Engineers
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