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Published January 2023 | Version v1
Journal article

3D-printed sensor decorated with nanomaterials by CO2 laser ablation and electrochemical treatment for non-enzymatic tyrosine detection

  • 1. Institute of Chemistry, Department of Fundamental Chemistry, University of São Paulo, São Paulo (Brazil)
  • 2. Federal Institute of Paraná, Pitanga (Brazil)
  • 3. Department of Physical Chemistry, Institute of Chemistry, University of Campinas, Campinas (Brazil)
  • 4. Institute of Physics "Gleb Wataghin," Applied Physics Department, State University of Campinas, Campinas (Brazil)
  • 5. Institute of Chemistry, Federal University of Uberlândia, Uberlândia (Brazil)

Description

The combination of CO2 laser ablation and electrochemical surface treatments is demonstrated to improve the electrochemical performance of carbon black/polylactic acid (CB/PLA) 3D-printed electrodes through the growth of flower-like Na2O nanostructures on their surface. Scanning electron microscopy images revealed that the combination of treatments ablated the electrode's polymeric layer, exposing a porous surface where Na2O flower-like nanostructures were formed. The electrochemical performance of the fabricated electrodes was measured by the reversibility of the ferri/ferrocyanide redox couple presenting a significantly improved performance compared with electrodes treated by only one of the steps. Electrodes treated by the combined method also showed a better electrochemical response for tyrosine oxidation. These electrodes were used as a non-enzymatic tyrosine sensor for quantification in human urine samples. Two fortified urine samples were analyzed, and the recovery values were 106 and 109%. The LOD and LOQ for tyrosine determination were 0.25 and 0.83 μmol L−1, respectively, demonstrating that the proposed devices are suitable sensors for analyses of biological samples, even at low analyte concentrations. Graphical

Additional details

Publishing Information

Journal Title
Microchimica Acta (Online)
Journal Volume
190
Journal Issue
2
Journal Page Range
p. 1-11
ISSN
1436-5073

Optional Information

Copyright
Copyright (c) 2023 The Author(s), under exclusive licence to Springer-Verlag GmbH Austria, part of Springer Nature