Crapnell Robert D, Bernalte Elena, Sigley Evelyn, Banks Craig E
Faculty of Science and Engineering, Manchester Metropolitan University Chester Street M1 5GD UK
RSC Adv. 2024 Mar 8;14(12):8108-8115. doi: 10.1039/d3ra08524d. eCollection 2024 Mar 6.
The first report of conductive recycled polyethylene terephthalate glycol (rPETg) for additive manufacturing and electrochemical applications is reported herein. Graphene nanoplatelets (GNP), multi-walled carbon nanotubes (MWCNT) and carbon black (CB) were embedded within a recycled feedstock to produce a filament with lower resistance than commercially available conductive polylactic acid (PLA). In addition to electrical conductivity, the rPETg was able to hold >10 wt% more conductive filler without the use of a plasticiser, showed enhanced temperature stability, had a higher modulus, improved chemical resistance, lowered levels of solution ingress, and could be sterilised in ethanol. Using a mix of carbon materials CB/MWCNT/GNP (25/2.5/2.5 wt%) the electrochemical performance of the rPETg filament was significantly enhanced, providing a heterogenous electrochemical rate constant, , equating to 0.88 (±0.01) × 10 cm s compared to 0.46 (±0.02) × 10 cm s for commercial conductive PLA. This work presents a paradigm shift within the use of additive manufacturing and electrochemistry, allowing the production of electrodes with enhanced electrical, chemical and mechanical properties, whilst improving the sustainability of the production through the use of recycled feedstock.
本文首次报道了用于增材制造和电化学应用的导电再生聚对苯二甲酸乙二醇酯二醇(rPETg)。将石墨烯纳米片(GNP)、多壁碳纳米管(MWCNT)和炭黑(CB)嵌入再生原料中,以生产出电阻低于市售导电聚乳酸(PLA)的长丝。除了导电性外,rPETg在不使用增塑剂的情况下能够容纳超过10 wt%的导电填料,表现出更高的热稳定性、更高的模量、更好的耐化学性、更低的溶液侵入水平,并且可以在乙醇中进行灭菌。使用CB/MWCNT/GNP(25/2.5/2.5 wt%)的碳材料混合物,rPETg长丝的电化学性能得到显著增强,提供了一个异质电化学速率常数,为0.88(±0.01)×10 cm s,而市售导电PLA为0.46(±0.02)×10 cm s。这项工作在增材制造和电化学的应用方面带来了范式转变,允许生产具有增强的电学、化学和机械性能的电极,同时通过使用再生原料提高生产的可持续性。