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高度扭曲的双螺旋碳纳米管纱线。

Highly twisted double-helix carbon nanotube yarns.

机构信息

National Key Laboratory of Science and Technology on Advanced Composites in Special Environments, Centre for Composite Materials and Structures, Harbin Institute of Technology, Harbin 150080, P. R. China.

出版信息

ACS Nano. 2013 Feb 26;7(2):1446-53. doi: 10.1021/nn305209h. Epub 2013 Jan 4.

Abstract

The strength and flexibility of carbon nanotubes (CNTs) allow them to be constructed into a variety of innovated architectures with fascinating properties. Here, we show that CNTs can be made into a highly twisted yarn-derived double-helix structure by a conventional twist-spinning process. The double-helix is a stable and hierarchical configuration consisting of two single-helical yarn segments, with controlled pitch and unique mechanical properties. While one of the yarn components breaks early under tension due to the highly twisted state, the second yarn produces much larger tensile strain and significantly prolongs the process until ultimate fracture. In addition, these elastic and conductive double-helix yarns show simultaneous and reversible resistance change in response to a wide range of input sources (mechanical, photo, and thermal) such as applied strains or stresses, light illumination, and environmental temperature. Our results indicate that it is possible to create higher-level, more complex architectures from CNT yarns and fabricate multifunctional nanomaterials with potential applications in many areas.

摘要

碳纳米管(CNTs)的强度和柔韧性使其能够通过传统的扭转型纺丝工艺构建成具有迷人特性的各种创新结构。在这里,我们展示了 CNTs 可以通过常规的扭转型纺丝工艺制成高度扭曲的纱线衍生的双螺旋结构。双螺旋结构由两个单螺旋纱段组成,具有可控的螺距和独特的机械性能,是一种稳定的分层结构。虽然由于高度扭曲状态,其中一个纱线组件在张力作用下早期断裂,但第二个纱线产生了更大的拉伸应变,并显著延长了直至最终断裂的过程。此外,这些弹性和导电的双螺旋纱线在响应各种输入源(机械、光和热)时表现出同时且可逆的电阻变化,例如施加的应变或应力、光照射和环境温度。我们的结果表明,有可能从 CNT 纱线中创建更高层次、更复杂的结构,并制造具有广泛应用潜力的多功能纳米材料。

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