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螺旋结构导电复合材料用于高拉伸、坚固的导体和传感器。

Spirally Structured Conductive Composites for Highly Stretchable, Robust Conductors and Sensors.

机构信息

State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute of Sichuan University , Chengdu 610065, China.

出版信息

ACS Appl Mater Interfaces. 2017 Jul 12;9(27):23007-23016. doi: 10.1021/acsami.7b06256. Epub 2017 Jun 28.

Abstract

Flexible and stretchable electronics are highly desirable for next generation devices. However, stretchability and conductivity are fundamentally difficult to combine for conventional conductive composites, which restricts their widespread applications especially as stretchable electronics. Here, we innovatively develop a new class of highly stretchable and robust conductive composites via a simple and scalable structural approach. Briefly, carbon nanotubes are spray-coated onto a self-adhesive rubber film, followed by rolling up the film completely to create a spirally layered structure within the composites. This unique spirally layered structure breaks the typical trade-off between stretchability and conductivity of traditional conductive composites and, more importantly, restrains the generation and propagation of mechanical microcracks in the conductive layer under strain. Benefiting from such structure-induced advantages, the spirally layered composites exhibit high stretchability and flexibility, good conductive stability, and excellent robustness, enabling the composites to serve as highly stretchable conductors (up to 300% strain), versatile sensors for monitoring both subtle and large human activities, and functional threads for wearable electronics. This novel and efficient methodology provides a new design philosophy for manufacturing not only stretchable conductors and sensors but also other stretchable electronics, such as transistors, generators, artificial muscles, etc.

摘要

可拉伸和可延展电子产品是下一代设备的理想选择。然而,对于传统的导电复合材料来说,拉伸性和导电性在根本上很难结合,这限制了它们的广泛应用,特别是在可拉伸电子产品方面。在这里,我们通过一种简单且可扩展的结构方法,创新性地开发了一类新型的高拉伸强度和强韧的导电复合材料。简而言之,将碳纳米管喷涂到自粘橡胶薄膜上,然后将薄膜完全卷起,在复合材料内部形成螺旋层状结构。这种独特的螺旋层状结构打破了传统导电复合材料在拉伸性和导电性之间的典型权衡关系,更重要的是,抑制了在应变下导电层中机械微裂纹的产生和传播。得益于这种结构诱导的优势,螺旋层状复合材料表现出高拉伸性和柔韧性、良好的导电稳定性和出色的韧性,使复合材料能够作为高可拉伸导体(高达 300%的应变)、用于监测细微和大人体活动的多功能传感器,以及用于可穿戴电子设备的功能线。这种新颖而有效的方法为制造不仅是可拉伸导体和传感器,而且还为其他可拉伸电子产品(如晶体管、发电机、人造肌肉等)提供了新的设计理念。

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