Thanh Tung Tran, Chen Shengjian Jammy, Fumeaux Christophe, Kim TaeYoung, Losic Dusan
School of Chemical Engineering and Advanced Materials, The University of Adelaide, SA 5005, Australia.
School of Electrical and Electronic Engineering, The University of Adelaide, Australia.
Nanotechnology. 2021 Mar 25;32(24). doi: 10.1088/1361-6528/abed04.
We report a flexible and highly efficient wideband slot antenna based on a highly conductive composite of poly(3,4-ethylenedioxythiophene) (PEDOT) and N-doped reduced graphene oxide (N-doped rGO) for wearable applications. The high conductivity of this hybrid material with low sheet resistance of 0.56 Ω/square, substantial thickness of 55m, and excellent mechanical resilience (<5.5% resistance change after 1000 bending cycles) confirmed this composite to be a suitable antenna conductor. The antenna achieved an estimated conduction efficiency close to 80% over a bandwidth from 3 to 8 GHz. Moreover, the successful operation of a realized antenna prototype has been demonstrated in free space and as part of a wearable camera system. The read range of the system was measured to be 271.2 m, which is 23 m longer than that of the original monopole antennas provided by the supplier. The synergistic effects between the dual conjugated structures of N-doped rGO and PEDOT in a single composite with fine distribution and interfacial interactions are critical to the demonstrated material performance. The N-doped rGO sheet reinforces the mechanical stability whereas the PEDOT functions as additive and/or binder, leading to an improved electrical and mechanical performance compared to that of the graphene and PEDOT alone. This high-performing nanocomposite material meets requirements for antenna design and opens the door for diverse future non-metallic flexible electronic device developments.
我们报道了一种基于聚(3,4-乙撑二氧噻吩)(PEDOT)和氮掺杂还原氧化石墨烯(N掺杂rGO)的高导电复合材料的柔性高效宽带缝隙天线,用于可穿戴应用。这种复合材料具有高导电性,低方阻为0.56Ω/□,厚度达55μm,且具有出色的机械弹性(1000次弯曲循环后电阻变化<5.5%),证实其为合适的天线导体。该天线在3至8GHz带宽内实现了接近80%的估计传导效率。此外,已在自由空间以及作为可穿戴相机系统的一部分展示了所实现的天线原型的成功运行。该系统的读取范围经测量为271.2m,比供应商提供的原始单极天线长23m。N掺杂rGO和PEDOT在单一复合材料中的双共轭结构之间具有良好分布和界面相互作用的协同效应,对所展示的材料性能至关重要。N掺杂rGO片增强了机械稳定性,而PEDOT起到添加剂和/或粘合剂的作用,与单独的石墨烯和PEDOT相比,导致了改进的电气和机械性能。这种高性能纳米复合材料满足天线设计要求,并为未来各种非金属柔性电子器件的发展打开了大门。