Fabrication of photoresist SU-8 pyrolyzed carbon electrodes and their integration in a microfluidic hematocrit detection system

Carbon microelectrodes are attractive for microfluidic biosensing due to their wide potential window, low overpotentials, chemical stability, and compatibility with low-cost microfabrication. Pyrolysis of photopatterned SU-8 offers a scalable route to carbon electrode fabrication; however, conventional two-step pyrolysis often leads to adhesion issues, geometric distortion, and limited surface area in low-aspect-ratio planar designs. These constraints restrict performance and broader adoption in analytical microdevices. Hematocrit determination, a clinically essential diagnostic measurement, requires electrodes with high reproducibility and robust electrochemical response. A simplified fabrication strategy that improves electrode surface area and performance while maintaining low-aspect-ratio planar geometries remains unresolved.We developed a three-step pyrolysis protocol that enables fabrication of low-aspect-ratio planar SU-8-derived carbon electrodes with both micro- and millimeter-scale features while improving structural integrity and surface morphology. The electrodes were integrated into a PDMS-based microfluidic device for hematocrit detection by measuring current responses of red blood cells suspended in phosphate-buffered saline at 100 V for 30 s. A linear correlation was observed between current and red blood cell concentration. The device achieved 3.6% precision and 3.8% accuracy for hematocrit determination, comparable to previously reported platinum-based systems (2.8% precision, 2.6% accuracy). Surface characterization via field-emission scanning electron microscopy and atomic force microscopy revealed a 25% increase in surface area relative to platinum electrodes, resulting from 2.7 times greater roughness and 58 times greater thickness. These structural enhancements reduced charge-transfer and concentration overpotentials, improving electrochemical performance.This work introduces a reproducible three-step pyrolysis method that overcomes long-standing limitations in the fabrication of low-aspect-ratio pyrolytic carbon electrodes. By increasing electroactive surface area without complex coatings or noble metals, the approach enables high-performance, low-cost microelectrodes suitable for integrated biosensing. The demonstrated equivalence to platinum electrodes in hematocrit detection highlights its translational potential for scalable diagnostic microdevices.

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Publication Details

Journal
Biomedical Microdevices
Published
2026-08-24
DOI
https://doi.org/10.1007/s10544-026-00838-6
Primary Topic
Microfluidic and Bio-sensing Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Fabrication of photoresist SU-8 pyrolyzed carbon electrodes and their integration in a microfluidic hematocrit detection system

Sanaz Habibi, Hwi Yong Lee, Chito Kendrick, Jessika Rogers et al.
Biomedical Microdevices
Microfluidic and Bio-sensing Technologies
article

Fabrication of photoresist SU-8 pyrolyzed carbon electrodes and their integration in a microfluidic hematocrit detection system

Sanaz Habibi, Hwi Yong Lee, Chito Kendrick, Jessika Rogers, Adrienne Minerick
article en

Abstract

Carbon microelectrodes are attractive for microfluidic biosensing due to their wide potential window, low overpotentials, chemical stability, and compatibility with low-cost microfabrication. Pyrolysis of photopatterned SU-8 offers a scalable route to carbon electrode fabrication; however, conventional two-step pyrolysis often leads to adhesion issues, geometric distortion, and limited surface area in low-aspect-ratio planar designs. These constraints restrict performance and broader adoption in analytical microdevices. Hematocrit determination, a clinically essential diagnostic measurement, requires electrodes with high reproducibility and robust electrochemical response. A simplified fabrication strategy that improves electrode surface area and performance while maintaining low-aspect-ratio planar geometries remains unresolved.We developed a three-step pyrolysis protocol that enables fabrication of low-aspect-ratio planar SU-8-derived carbon electrodes with both micro- and millimeter-scale features while improving structural integrity and surface morphology. The electrodes were integrated into a PDMS-based microfluidic device for hematocrit detection by measuring current responses of red blood cells suspended in phosphate-buffered saline at 100 V for 30 s. A linear correlation was observed between current and red blood cell concentration. The device achieved 3.6% precision and 3.8% accuracy for hematocrit determination, comparable to previously reported platinum-based systems (2.8% precision, 2.6% accuracy). Surface characterization via field-emission scanning electron microscopy and atomic force microscopy revealed a 25% increase in surface area relative to platinum electrodes, resulting from 2.7 times greater roughness and 58 times greater thickness. These structural enhancements reduced charge-transfer and concentration overpotentials, improving electrochemical performance.This work introduces a reproducible three-step pyrolysis method that overcomes long-standing limitations in the fabrication of low-aspect-ratio pyrolytic carbon electrodes. By increasing electroactive surface area without complex coatings or noble metals, the approach enables high-performance, low-cost microelectrodes suitable for integrated biosensing. The demonstrated equivalence to platinum electrodes in hematocrit detection highlights its translational potential for scalable diagnostic microdevices.

Biomedical MicrodevicesVol. 28(3)
Michigan Technological University (US), University of Michigan (US), Rotorua Hospital (NZ)
National Science Foundation, Michigan Technological University
Openalex Percentile: Top 48%
Microfluidic and Bio-sensing Technologies
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