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剪纸增强了薄膜附着力。

Kirigami enhances film adhesion.

机构信息

Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

Soft Matter. 2018 Mar 28;14(13):2515-2525. doi: 10.1039/c7sm02338c.

Abstract

Structures of thin films bonded on substrates have been used in technologies as diverse as flexible electronics, soft robotics, bio-inspired adhesives, thermal-barrier coatings, medical bandages, wearable devices and living devices. The current paradigm for maintaining adhesion of films on substrates is to make the films thinner, and more compliant and adhesive, but these requirements can compromise the function or fabrication of film-substrate structures. For example, there are limits on how thin, compliant and adhesive epidermal electronic devices can be fabricated and still function reliably. Here we report a new paradigm that enhances adhesion of films on substrates via designing rational kirigami cuts in the films without changing the thickness, rigidity or adhesiveness of the films. We find that the effective enhancement of adhesion by kirigami is due to (i) the shear-lag effect of the film segments; (ii) partial debonding at the film segments' edges; and (iii) compatibility of kirigami films with inhomogeneous deformation of substrates. While kirigami has been widely used to program thin sheets with desirable shapes and mechanical properties, fabricate electronics with enhanced stretchability and design the assembly of three-dimensional microstructures, this paper gives the first systematic study on kirigami enhancing film adhesion. We further demonstrate novel applications including a kirigami bandage, a kirigami heat pad and printed kirigami electronics.

摘要

薄膜与基底的结合结构在各种技术中都有应用,如柔性电子、软机器人、仿生粘合剂、热障涂层、医用绷带、可穿戴设备和活体设备。目前保持薄膜与基底之间附着力的方法是使薄膜更薄、更柔顺和更具粘性,但这些要求可能会影响薄膜-基底结构的功能或制造。例如,制造可靠的、薄的、柔顺的和具有粘性的表皮电子设备的能力是有限的。在这里,我们报告了一种新的方法,即通过在薄膜上设计合理的剪纸切口来增强薄膜与基底的附着力,而不改变薄膜的厚度、刚性或粘性。我们发现,剪纸可以有效地增强附着力,这是由于(i)薄膜段的剪切滞后效应;(ii)薄膜段边缘的部分脱粘;以及(iii)剪纸薄膜与基底不均匀变形的兼容性。虽然剪纸已经被广泛用于编程具有理想形状和机械性能的薄片、制造具有增强拉伸性能的电子产品以及设计三维微结构的组装,但本文首次对剪纸增强薄膜附着力进行了系统研究。我们进一步展示了一些新的应用,包括剪纸绷带、剪纸热垫和印刷剪纸电子产品。

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