Wang Huiliang, Wang Yanming, Tee Benjamin C-K, Kim Kwanpyo, Lopez Jeffrey, Cai Wei, Bao Zhenan
Department of Materials Science and Engineering Stanford University 496 Lomita Mall Stanford CA 94305 USA.
Department of Electrical Engineering Stanford University 350 Serra Mall Stanford CA 94305 USA.
Adv Sci (Weinh). 2015 Jun 1;2(9):1500103. doi: 10.1002/advs.201500103. eCollection 2015 Sep.
The mechanical flexibility and structural softness of ultrathin devices based on organic thin films and low-dimensional nanomaterials have enabled a wide range of applications including flexible display, artificial skin, and health monitoring devices. However, both living systems and inanimate systems that are encountered in daily lives are all 3D. It is therefore desirable to either create freestanding electronics in a 3D form or to incorporate electronics onto 3D objects. Here, a technique is reported to utilize shape-memory polymers together with carbon nanotube flexible electronics to achieve this goal. Temperature-assisted shape control of these freestanding electronics in a programmable manner is demonstrated, with theoretical analysis for understanding the shape evolution. The shape control process can be executed with prepatterned heaters, desirable for 3D shape formation in an enclosed environment. The incorporation of carbon nanotube transistors, gas sensors, temperature sensors, and memory devices that are capable of self-wrapping onto any irregular shaped-objects without degradations in device performance is demonstrated.
基于有机薄膜和低维纳米材料的超薄器件所具有的机械柔韧性和结构柔软性,使其在包括柔性显示器、人造皮肤和健康监测设备在内的广泛应用中得以实现。然而,日常生活中遇到的生物系统和无生命系统都是三维的。因此,要么以三维形式制造独立式电子器件,要么将电子器件集成到三维物体上,这是很有必要的。在此,报道了一种利用形状记忆聚合物与碳纳米管柔性电子器件相结合来实现这一目标的技术。展示了以可编程方式对这些独立式电子器件进行温度辅助形状控制,并进行了理论分析以理解形状演变。形状控制过程可以通过预图案化加热器来执行,这对于在封闭环境中形成三维形状是理想的。展示了将能够自包裹在任何不规则形状物体上且不会降低器件性能的碳纳米管晶体管、气体传感器、温度传感器和存储器件集成在一起。