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Hybrid Fabrication of an Electrochemical Electrode via Inkjet Printing on 3D-Printed Substrates

  • Md Tawabur Rahman
  • , Jessica Bone
  • , Thomas J. Roussel
  • , Judith L. Jenkins
  • , Aron J. Huckaba

Research output: Contribution to journalArticlepeer-review

Abstract

Combinations of additive manufacturing methods such as inkjet printing and various 3D printing techniques have led to advances in customizable electronic devices by reducing the need for the complex assembly of individually fabricated components. Such combinations are particularly attractive for the fabrication of electrochemical sensing platforms, where the sizes and spatial configurations of electrodes enable (or limit) the sensitivity of the sensors. However, to realize the potential of the combined fabrication methods, the parameters of each printing technique must be mutually compatible. For instance, electrochemical sensing assemblies consisting of inkjet-printed metals on 3D-printed plastics require post-processing steps that convert nanoparticular metals in precursor ink to conformal, mechanically stable, conductive films with negligible alteration to the underlying plastic substrate. While traditional sintering techniques convert inks to conductive metal films, the use of high temperatures are not compatible with structures printed via fused deposition modeling, for instance. In this proof-of-concept study, commercial gold inks were inkjet-printed onto 3D-printed poly(lactic acid) (PLA) substrates. Optimization of the printing parameters and IR sintering resulted in stable, electrochemically active working electrodes. Surface characterization via scanning electron microscopy confirmed the formation of a homogeneous coating, and X-ray photoelectron spectroscopy data revealed the presence of gold on the surface. Electrical characterization via a four-point probe demonstrated a low sheet resistance, indicating the suitability of these electrodes for electrochemical measurements. Electrochemical data revealed that these gold electrodes are electrochemically active, and the diffusion-limited behavior of a redox probe was observed as expected. Additionally, these electrodes were tested for detecting lead in standard solutions, showing a linear response to lead concentrations, which indicates their potential in sensing applications. However, the detection range is significantly higher than the EPA-approved limit for lead concentrations in water, suggesting that electrode sensitivity requires further improvement. These findings have implications for fabricating inkjet-printed gold electrodes as sensors while highlighting the need for additional modifications to meet regulatory detection limits for heavy metal analysis.

Original languageEnglish
Pages (from-to)24053-24062
Number of pages10
JournalACS Omega
Volume11
Issue number16
DOIs
StatePublished - Apr 28 2026

Bibliographical note

Publisher Copyright:
© 2026 The Authors. Published by American Chemical Society

Funding

This work was performed in part at the U.K. Electron Microscopy Center, a member of the National Nanotechnology Coordinated Infrastructure (NNCI), which is supported by the National Science Foundation (NNCI-2025075). All authors acknowledge support from the National Science Foundation under Cooperative Agreement No. 1849213. Publication of this article was funded in part by the Office of Sponsored Programs & Research Administration at Eastern Kentucky University. The content provided here does not necessarily represent the views or interpretations of Eastern Kentucky University. This work was performed in part at the U.K. Electron Microscopy Center, a member of the National Nanotechnology Coordinated Infrastructure (NNCI), which is supported by the National Science Foundation (NNCI-2025075). All authors acknowledge support from the National Science Foundation under Cooperative Agreement No. 1849213. Publication of this article was funded in part by the Office of Sponsored Programs & Research Administration at Eastern Kentucky University. The content provided here does not necessarily represent the views or interpretations of Eastern Kentucky University.

FundersFunder number
National Science Foundation Arctic Social Science Program1849213, NNCI-2025075
Eastern Kentucky, University

    ASJC Scopus subject areas

    • General Chemistry
    • General Chemical Engineering

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