Multi-Scale Additive Manufacturing Lab, Mechanical and Mechatronics Engineering Department , University of Waterloo , 200 University Avenue West , Waterloo , Ontario N2L 3G1 , Canada.
Department of Bioengineering , University of California, Los Angeles , 410 Westwood Plaza , Los Angeles , California 90095 , United States.
ACS Nano. 2020 Feb 25;14(2):1520-1532. doi: 10.1021/acsnano.9b06283. Epub 2020 Jan 21.
Three-dimensional flexible porous conductors have significantly advanced wearable sensors and stretchable devices because of their specific high surface area. Dip coating of porous polymers with graphene is a facile, low cost, and scalable approach to integrate conductive layers with the flexible polymer substrate platforms; however, the products often suffer from nanoparticle delamination and overtime decay. Here, a fabrication scheme based on accessible methods and safe materials is introduced to surface-dope porous silicone sensors with graphene nanoplatelets. The sensors are internally shaped with ordered, interconnected, and tortuous internal geometries (i.e., triply periodic minimal surfaces) using fused deposition modeling (FDM) 3D-printed sacrificial molds. The molds were dip coated to transfer-embed graphene onto the silicone rubber (SR) surface. The presented procedure exhibited a stable coating on the porous silicone samples with long-term electrical resistance durability over ∼12 months period and high resistance against harsh conditions (exposure to organic solvents). Besides, the sensors retained conductivity upon severe compressive deformations (over 75% compressive strain) with high strain-recoverability and behaved robustly in response to cyclic deformations (over 400 cycles), temperature, and humidity. The sensors exhibited a gauge factor as high as 10 within the compressive strain range of 2-10%. Given the tunable sensitivity, the engineered biocompatible and flexible devices captured movements as rigorous as walking and running to the small deformations resulted by human pulse.
三维柔性多孔导体由于其具有特定的高表面积,因此大大推进了可穿戴传感器和可拉伸设备的发展。用石墨烯对多孔聚合物进行浸涂是一种将导电层与柔性聚合物基底平台集成的简单、低成本和可扩展的方法;然而,该产品通常会遭受纳米颗粒分层和长时间衰减的问题。在这里,引入了一种基于易获得的方法和安全材料的制造方案,以便用石墨烯纳米片对多孔硅传感器进行表面掺杂。传感器采用熔融沉积建模(FDM)3D 打印牺牲模具,在内部形成有序、相互连接和曲折的内部几何形状(即三重周期性最小表面)。模具经过浸涂将石墨烯转移嵌入到硅橡胶(SR)表面。所提出的方法在多孔硅样品上表现出稳定的涂层,其长期电阻耐久性超过 12 个月,并且能够抵抗苛刻条件(暴露于有机溶剂)。此外,这些传感器在严重压缩变形(超过 75%的压缩应变)下保留了导电性,具有高应变恢复性,并且能够对循环变形(超过 400 次)、温度和湿度做出稳健响应。这些传感器在 2-10%的压缩应变范围内表现出高达 10 的应变系数。鉴于其可调灵敏度,这种工程生物相容性和柔性器件能够捕捉到像步行和跑步这样的剧烈运动,以及人体脉搏产生的微小变形。