Stamping Nanoparticles onto the Electrode for Rapid Electrochemical Analysis in Microfluidics.
Jiyoung SonEdgar C BuckShawn L RiechersXiao-Ying YuPublished in: Micromachines (2021)
Electrochemical analysis is an efficient way to study various materials. However, nanoparticles are challenging due to the difficulty in fabricating a uniform electrode containing nanoparticles. We developed novel approaches to incorporate nanoparticles as a working electrode (WE) in a three-electrode microfluidic electrochemical cell. Specifically, conductive epoxy was used as a medium for direct application of nanoparticles onto the electrode surface. Three approaches in this work were illustrated, including sequence stamping, mix stamping, and droplet stamping. Shadow masking was used to form the conductive structure in the WE surface on a thin silicon nitride (SiN) membrane. Two types of nanomaterials, namely cerium oxide (CeO2) and graphite, were chosen as representative nanoparticles. The as-fabricated electrodes with attached particles were characterized using atomic force microscopy (AFM) and time-of-flight secondary ion mass spectrometry (ToF-SIMS). Electrochemical analysis was performed to verify the feasibility of these nanoparticles as electrodes. Nanomaterials can be quickly assessed for their electrochemical properties using these new electrode fabrication methods in a microfluidic cell, offering a passport for rapid nanomaterial electrochemical analysis in the future.
Keyphrases
- gold nanoparticles
- mass spectrometry
- single cell
- carbon nanotubes
- atomic force microscopy
- label free
- ionic liquid
- molecularly imprinted
- high throughput
- reduced graphene oxide
- stem cells
- liquid chromatography
- cross sectional
- ms ms
- bone marrow
- walled carbon nanotubes
- tandem mass spectrometry
- amino acid
- capillary electrophoresis