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A Substrate-Aware CMOS Micromagnetic Stimulation SoC with a Bent Micro-Coil and Programmable Triangular Current Driver

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Title
A Substrate-Aware CMOS Micromagnetic Stimulation SoC with a Bent Micro-Coil and Programmable Triangular Current Driver
Issued Date
2026-07
Citation
ELECTRONICS, v.15, no.14
Type
Article
Author Keywords
CMOS SoC ; command-pattern decoder ; magnetic neural stimulation ; micro-coil ; micromagnetic stimulation ; MSTI ; neural-interface IC ; substrate-aware electromagnetic simulation
Keywords
MAGNETIC STIMULATION ; SPIRAL INDUCTORS ; ACTIVATION ; EFFICIENT ; NEURONS ; MODEL
ISSN
2079-9292
Abstract

Microscopic magnetic stimulation (MSTI) induces electric fields without direct charge injection and can shape localized field gradients with asymmetric micro-coils. Most demonstrations still rely on external drivers, off-chip hardware, or separated coil validation, so the CMOS integration boundary remains poorly characterized. This work presents a fabricated 2 & times;1 mm(2 ) 0.18 mu m CMOS magnetic-stimulation SoC that co-integrates ASK-compatible command decoding, FSM and register-based parameter control, a programmable current-voltage-current triangular driver, and a bent top-metal micro-coil, and it characterizes the on-chip driver-to-coil path together with a substrate-aware field model. Sensing-load reconstruction confirms command-to-waveform programmability, including duration-window decoding, burst-count control, and polarity reversal, with measured slew targets that give a peak current of I-pk=3.72 - 21.6 mA . A quantitative comparison contrasts the current-mode triangular driver with conventional electrode stimulators, a coil-impedance measurement shows the coil stays resistive across 1 to 10 MHz, and the measured total SoC power is about 41 mW. Substrate-aware simulation at a 15 mu m target plane shows that the grounded p-substrate retains 35.1 - 40.5% of the no-substrate peak x-directed field-gradient metric. The prototype establishes this electrical programmability and the substrate-aware gradient-transfer loss as a compact design-margin metric for CMOS-integrated magnetic stimulation. Direct biological activation is not claimed and is left to future in vitro validation.

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URI
https://scholar.dgist.ac.kr/handle/20.500.11750/60896
DOI
10.3390/electronics15143045
Publisher
MDPI
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이상훈
Lee, Sanghoon이상훈

Department of Robotics and Mechatronics Engineering

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