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Multi-walled carbon nanotubes/carbon black/rPLA for high-performance conductive additive manufacturing filament and the simultaneous detection of acetaminophen and phenylephrine. | LitMetric

AI Article Synopsis

  • * The newly developed MWCNT/CB filament greatly outperforms traditional CB filaments, achieving nearly six times better electrochemical rates and effective detection capabilities for substances like acetaminophen and phenylephrine.
  • * A practical, print-at-home device utilizing this filament was created, allowing for the accurate detection of pharmaceuticals in real samples, with successful recovery rates ranging from 87% to 120%.

Article Abstract

The combination of multi-walled carbon nanotubes (MWCNT) and carbon black (CB) is presented to produce a high-performance electrically conductive recycled additive manufacturing filament. The filament and subsequent additively manufactured electrodes were characterised by TGA, XPS, Raman, and SEM and showed excellent low-temperature flexibility. The MWCNT/CB filament exhibited an improved electrochemical performance compared to an identical in-house produced bespoke filament using only CB. A heterogeneous electrochemical rate constant, [Formula: see text] of 1.71 (± 0.19) × 10 cm s was obtained, showing an almost six times improvement over the commonly used commercial conductive CB/PLA. The filament was successfully tested for the simultaneous determination of acetaminophen and phenylephrine, producing linear ranges of 5-60 and 5-200 μM, sensitivities of 0.05 μA μM and 0.14 μA μM, and limits of detection of 0.04 μM and 0.38 μM, respectively. A print-at-home device is presented where a removable lid comprised of rPLA can be placed onto a drinking vessel and the working, counter, and reference components made from our bespoke MWCNT/CB filament. The print-at-home device was successfully used to determine both compounds within real pharmaceutical products, with recoveries between 87 and 120% over a range of three real samples. This work paves the way for fabricating new highly conductive filaments using a combination of carbon materials with different morphologies and physicochemical properties and their application to produce additively manufactured electrodes with greatly improved electrochemical performance.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10789692PMC
http://dx.doi.org/10.1007/s00604-023-06175-2DOI Listing

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