Platinum-nanostructured silicon microneedles with scalable fabrication for EEG biosensing

This study details the development and characterization of a silicon microneedle electrode array for enhanced biopotential recording. Fabricated using a streamlined two-step process, the device design was guided by mechanical analysis to ensure structural stability and minimize skin-electrode impedance. Structural analysis identified needle lengths of 500-700 µm as mechanically favorable for high buckling resistance, with needle spacing selected to reduce inter-needle interference and support effective skin penetration. The microneedles were subsequently modified through platinum electrodeposition to produce a nanostructured porous surface, which increased the electroactive area by approximately 15-fold compared to bare platinum microneedles, as determined from electrochemical measurements. Electrochemical characterization and proof-of-concept EEG experiments demonstrated improved signal acquisition performance, with the nanostructured electrodes yielding higher signal-to-noise ratios than bare microneedles in both SSVEP and ASSR recordings. Compared to conventional gel-based Ag/AgCl wet electrodes, the proposed device eliminates the need for conductive gel application, reduces preparation time, and improves user comfort. The work establishes a scalable, cleanroom-compatible method for fabricating nanostructured platinum-coated silicon microneedles, highlighting their potential as a user-friendly platform for next-generation wearable electrophysiological monitoring.

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Publication Details

Journal
Microsystems & Nanoengineering
Published
2026-08-24
DOI
https://doi.org/10.1038/s41378-026-01373-3
Primary Topic
Neuroscience and Neural Engineering
Type
article
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article

Platinum-nanostructured silicon microneedles with scalable fabrication for EEG biosensing

Nadezda Kuznetsova, Nurul Izni Rusli, Momina Amir, Irene Taurino et al.
Microsystems & Nanoengineering
Neuroscience and Neural Engineering
article

Platinum-nanostructured silicon microneedles with scalable fabrication for EEG biosensing

Nadezda Kuznetsova, Nurul Izni Rusli, Momina Amir, Irene Taurino, Frederik Ceyssens, Chen Wang, Ruochen Ding, Nadalan Vercooren, Alexander Bertrand, Michael Kraft
article en

Abstract

This study details the development and characterization of a silicon microneedle electrode array for enhanced biopotential recording. Fabricated using a streamlined two-step process, the device design was guided by mechanical analysis to ensure structural stability and minimize skin-electrode impedance. Structural analysis identified needle lengths of 500-700 µm as mechanically favorable for high buckling resistance, with needle spacing selected to reduce inter-needle interference and support effective skin penetration. The microneedles were subsequently modified through platinum electrodeposition to produce a nanostructured porous surface, which increased the electroactive area by approximately 15-fold compared to bare platinum microneedles, as determined from electrochemical measurements. Electrochemical characterization and proof-of-concept EEG experiments demonstrated improved signal acquisition performance, with the nanostructured electrodes yielding higher signal-to-noise ratios than bare microneedles in both SSVEP and ASSR recordings. Compared to conventional gel-based Ag/AgCl wet electrodes, the proposed device eliminates the need for conductive gel application, reduces preparation time, and improves user comfort. The work establishes a scalable, cleanroom-compatible method for fabricating nanostructured platinum-coated silicon microneedles, highlighting their potential as a user-friendly platform for next-generation wearable electrophysiological monitoring.

Microsystems & NanoengineeringVol. 12(1)
KU Leuven (BE)
Openalex Percentile: Top 15%
Neuroscience and Neural Engineering
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