Eco-friendly integration of gold nanoparticles into additive manufacturing filaments: advancing conductivity and electrochemical performance†

Elena Bernalte, Karen K. L. Augusto, Robert D. Crapnell, Hayley G. Andrews, Orlando Fatibello-Filho and Craig E. Banks
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Abstract

This work reports the inclusion of gold nanoparticles within conductive additive manufacturing filament for an improved electrochemical and electroanalytical performance. An eco-friendly synthesis was utilised, where graphite flakes are used as a natural reducing agent for the formation of gold nanoparticles. In this way, the graphite acts as both a reducing agent and contributes to the conductivity of the filament. The presence of gold nanoparticles on the surface of the graphite was confirmed through SEM, EDX, XRD and XPS analysis, after which the graphite was thermally mixed into recycled PLA along with carbon black and castor oil to create the conductive filament. Electrodes printed from this filament produced an enhanced electrochemical performance with a ΔEp of 111 (±5) mV, a heterogeneous electron (charge) transfer rate constant, using hexaammineruthenium(III) chloride, of k0 of 2.04 (±0.08) × 10−3 cm s−1, and the real electrochemical surface area, Areal of 0.53 (± 0.04) cm2 upon the inclusion of gold nanoparticles. This filament also provided a significantly enhanced electroanalytical performance toward the proof-of-concept determination of lead(II), producing a linear range between 1–75 ppb (μg L−1), with a sensitivity of 37 nA ppb−1, an R2 value of 0.98 and a limit of detection and limit of quantification of 0.89 ppb and 2.97 ppb, respectively. The electrodes were additionally successfully applied toward the determination of lead(II) within river water samples. This work demonstrates how advancements in the production of conductive additive manufacturing filaments can be achieved, paving the way for new research opportunities while adhering to eco-friendly practices.

Abstract Image

环保整合金纳米颗粒到增材制造细丝:提高电导率和电化学性能†
这项工作报告了在导电增材制造丝中包含金纳米颗粒以改善电化学和电分析性能。采用了一种环保的合成方法,其中石墨薄片用作形成金纳米颗粒的天然还原剂。这样,石墨既充当还原剂,又有助于灯丝的导电性。通过SEM、EDX、XRD和XPS分析证实石墨表面存在金纳米颗粒,然后将石墨与炭黑和蓖麻油热混合到回收PLA中,制成导电丝。用该材料制成的电极具有优异的电化学性能:ΔEp为111(±5)mV,使用氯化六胺(III)的非均相电子(电荷)转移速率常数k0为2.04(±0.08)× 10−3 cm s−1,在包合金纳米颗粒后,实际电化学表面积Areal为0.53(±0.04)cm2。该灯丝还为铅(II)的概念验证提供了显著增强的电分析性能,产生1 - 75 ppb (μg L−1)的线性范围,灵敏度为37 nA ppb−1,R2值为0.98,检测限和定量限分别为0.89 ppb和2.97 ppb。该电极还成功地应用于河流水样中铅(II)的测定。这项工作展示了如何在导电增材制造长丝的生产中取得进步,为新的研究机会铺平了道路,同时坚持环保实践。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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