Al Shboul Ahmad, Ketabi Mohsen, Skaf Daniella, Nyayachavadi Audithya, Lai Fak Yu Thierry, Rautureau Tom, Rondeau-Gagné Simon, Izquierdo Ricardo
Department of Electrical Engineering, École de Technologie Supérieure, Montréal, QC H3C 1K3, Canada.
Department of Chemistry and Biochemistry, Advanced Materials Centre of Research, University of Windsor, Windsor, ON N9B 3P4, Canada.
Sensors (Basel). 2023 Aug 13;23(16):7151. doi: 10.3390/s23167151.
This study presents graphene inks produced through the liquid-phase exfoliation of graphene flakes in water using optimized concentrations of dispersants (gelatin, triton X-100, and tween-20). The study explores and compares the effectiveness of the three different dispersants in creating stable and conductive inks. These inks can be printed onto polyethylene terephthalate (PET) substrates using an aerosol jet printer. The investigation aims to identify the most suitable dispersant to formulate a high-quality graphene ink for potential applications in printed electronics, particularly in developing chemiresistive sensors for IoT applications. Our findings indicate that triton X-100 is the most effective dispersant for formulating graphene ink (GTr), which demonstrated electrical conductivity (4.5 S·cm), a high nanofiller concentration of graphene flakes (12.2%) with a size smaller than 200 nm (<200 nm), a low dispersant-to-graphene ratio (5%), good quality as measured by Raman spectroscopy (I/I ≈ 0.27), and good wettability (θ ≈ 42°) over PET. The GTr's ecological benefits, combined with its excellent printability and good conductivity, make it an ideal candidate for manufacturing chemiresistive sensors that can be used for Internet of Things (IoT) healthcare and environmental applications.
本研究展示了通过在水中使用优化浓度的分散剂(明胶、吐温X - 100和吐温 - 20)对石墨烯薄片进行液相剥离制备的石墨烯墨水。该研究探索并比较了这三种不同分散剂在制备稳定且导电的墨水中的有效性。这些墨水可使用气溶胶喷射打印机打印到聚对苯二甲酸乙二酯(PET)基板上。该研究旨在确定最合适的分散剂,以配制用于印刷电子潜在应用的高质量石墨烯墨水,特别是用于开发物联网应用的化学电阻传感器。我们的研究结果表明,吐温X - 100是配制石墨烯墨水(GTr)最有效的分散剂,其表现出电导率(4.5 S·cm)、高浓度的尺寸小于200 nm(<200 nm)的石墨烯薄片纳米填料(12.2%)、低的分散剂与石墨烯比例(5%)、通过拉曼光谱测量的良好质量(I/I≈0.27)以及在PET上的良好润湿性(θ≈42°)。GTr的生态效益,结合其出色的可印刷性和良好的导电性,使其成为制造可用于物联网医疗保健和环境应用的化学电阻传感器的理想候选材料。