Claypole Andrew, Claypole James, Kilduff Liam, Gethin David, Claypole Tim
Welsh Centre for Printing and Coating, Bay Campus, Swansea University, Swansea SA1 8EN, UK.
Applied Sports, Technology, Exercise and Medicine, Bay Campus, Swansea University, Swansea SA1 8EN, UK.
Nanomaterials (Basel). 2021 May 1;11(5):1200. doi: 10.3390/nano11051200.
For wearable electronic devices to be fully integrated into garments, without restricting or impeding movement, requires flexible and stretchable inks and coatings, which must have consistent performance and recover from mechanical strain. Combining Carbon Black (CB) and ammonia plasma functionalized Graphite Nanoplatelets (GNPs) in a Thermoplastic Polyurethane (TPU) resin created a conductive ink that could stretch to substrate failure (>300% nominal strain) and cyclic strains of up to 100% while maintaining an electrical network. This highly stretchable, conductive screen-printable ink was developed using relatively low-cost carbon materials and scalable processes making it a candidate for future wearable developments. The electromechanical performance of the carbon ink for wearable technology is compared to a screen-printable silver as a control. After initial plastic deformation and the alignment of the nano carbons in the matrix, the electrical performance was consistent under cycling to 100% nominal strain. Although the GNP flakes are pulled further apart a consistent, but less conductive path remains through the CB/TPU matrix. In contrast to the nano carbon ink, a more conductive ink made using silver flakes lost conductivity at 166% nominal strain falling short of the substrate failure strain. This was attributed to the failure of direct contact between the silver flakes.
要使可穿戴电子设备完全集成到服装中且不限制或妨碍运动,就需要柔性且可拉伸的油墨和涂层,这些油墨和涂层必须具备一致的性能并能从机械应变中恢复。将炭黑(CB)与氨等离子体功能化的石墨纳米片(GNPs)在热塑性聚氨酯(TPU)树脂中混合,制成了一种导电油墨,该油墨可拉伸至基材失效(>300%标称应变)以及高达100%的循环应变,同时保持电网络。这种高度可拉伸的、可丝网印刷的导电油墨是使用相对低成本的碳材料和可扩展工艺开发的,使其成为未来可穿戴设备发展的候选材料。将用于可穿戴技术的碳油墨的机电性能与作为对照的可丝网印刷的银进行了比较。在初始塑性变形以及纳米碳在基体中排列后,在循环至100%标称应变时电性能保持一致。尽管GNPs薄片被进一步拉开,但通过CB/TPU基体仍存在一条一致但导电性较低的路径。与纳米碳油墨相比,一种使用银薄片制成的导电性更强的油墨在166%标称应变时失去了导电性,未达到基材失效应变。这归因于银薄片之间直接接触的失效。