Cost-effective protocol to produce 3D-printed electrochemical devices using a 3D pen and lab-made filaments to ciprofloxacin sensing

A novel conductive filament based on graphite (Gr) dispersed in polylactic acid polymer matrix (PLA) is described to produce 3D-electrochemical devices (Gr/PLA). This conductive filament was used to additively manufacture electrochemical sensors using the 3D pen. Thermogravimetric analysis confirmed...

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Veröffentlicht in:Mikrochimica acta (1966) 2023-08, Vol.190 (8), p.310-310, Article 310
Hauptverfasser: Lisboa, Thalles Pedrosa, de Faria, Lucas Vinícius, de Oliveira, Wallace Burger Veríssimo, Oliveira, Raylla Santos, Matos, Maria Auxiliadora Costa, Dornellas, Rafael Machado, Matos, Renato Camargo
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Sprache:eng
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Zusammenfassung:A novel conductive filament based on graphite (Gr) dispersed in polylactic acid polymer matrix (PLA) is described to produce 3D-electrochemical devices (Gr/PLA). This conductive filament was used to additively manufacture electrochemical sensors using the 3D pen. Thermogravimetric analysis confirmed that Gr was successfully incorporated into PLA, achieving a composite material (40:60% w/w, Gr and PLA, respectively), while Raman and scanning electron microscopy revealed the presence of defects and a high porosity on the electrode surface, which contributes to improved electrochemical performance. The 3D-printed Gr/PLA electrode provided a more favorable charge transfer (335 Ω) than the conventional glassy carbon (1277 Ω) and 3D-printed Proto-pasta® (3750 Ω) electrodes. As a proof of concept, the ciprofloxacin antibiotic, a species of multiple interest, was selected as a model molecule. Thus, a square wave voltammetry (SWV) method was proposed in the potential range + 0.9 to + 1.3 V (vs Ag|AgCl|KCl (sat) ), which provided a wide linear working range (2 to 32 µmol L −1 ), 1.79 µmol L −1 limit of detection (LOD), suitable precision (RSD 
ISSN:0026-3672
1436-5073
DOI:10.1007/s00604-023-05892-y