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通过纳米封闭效应,高度可拉伸的聚合物半导体薄膜

Jie Xu1, Sihong Wang1, Ging-Ji Nathan Wang1

  • 1Department of Chemical Engineering, Stanford University, Stanford, CA 94305, USA.

Science (New York, N.Y.)
|January 7, 2017
PubMed

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概括

研究人员通过使用纳米限制开发了可穿戴电子产品的高度伸缩的聚合物半导体. 这种技术在不牺牲电荷传输流动性的情况下提高了延展性,使新的灵活电子应用成为可能.

科学领域:

  • 材料科学
  • 聚合物科学
  • 电子工程

背景情况:

  • 柔软且适合穿戴的电子产品需要可伸缩的半导体.
  • 现有的可拉伸半导体往往会损害电荷传输的可移动性,以提高可拉伸性.

研究的目的:

  • 增强聚合物半导体的伸展性,而不会对电荷传输的移动性产生负面影响.
  • 探索纳米封闭作为一种提高聚合物半导体应力性能的策略.

主要方法:

  • 使用纳米聚合物来改变链动力学.
  • 制造半导体薄膜并测试它们在应力下的机械和电气性能.
  • 开发完全可伸缩的晶体管和可穿戴的发光二极管驱动器.

主要成果:

  • 实现半导体薄膜的延展性高达100%,而不会损失移动性.
  • 由于纳米限制,显著降低模量和延迟裂形成.
  • 在机械应力下保持高性能的可拉伸晶体管.

结论:

  • 纳米封闭是一种有效的策略来制造高度伸缩的聚合物半导体.
  • 这一突破使得先进的可穿戴电子设备具有更高的灵活性和耐用性.

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  • 这项技术为类似皮肤的可变电子产品铺平了道路.