4.8 Article

Design of Strain-Limiting Substrate Materials for Stretchable and Flexible Electronics

期刊

ADVANCED FUNCTIONAL MATERIALS
卷 26, 期 29, 页码 5345-5351

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.201600713

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资金

  1. National Basic Research Program of China [2015CB351900]
  2. National Natural Science Foundation of China [11402135, 11320101001]
  3. NSF [DMR-1121262, CMMI-1300846, CMMI-1400169]
  4. NIH [R01EB019337]
  5. Directorate For Engineering
  6. Div Of Civil, Mechanical, & Manufact Inn [1300846] Funding Source: National Science Foundation
  7. Div Of Civil, Mechanical, & Manufact Inn
  8. Directorate For Engineering [1400169] Funding Source: National Science Foundation

向作者/读者索取更多资源

Recently developed classes of electronics for biomedical applications exploit substrates that offer low elastic modulus and high stretchability, to allow intimate, mechanically biocompatible integration with soft biological tissues. A challenge is that such substrates do not generally offer protection of the electronics from high peak strains that can occur upon large-scale deformation, thereby creating a potential for device failure. The results presented here establish a simple route to compliant substrates with strain-limiting mechanics based on approaches that complement those of recently described alternatives. Here, a thin film or mesh of a high modulus material transferred onto a prestrained compliant substrate transforms into wrinkled geometry upon release of the prestrain. The structure formed by this process offers a low elastic modulus at small strain due to the small effective stiffness of the wrinkled film or mesh; it has a high tangent modulus (e.g., > 1000 times the elastic modulus) at large strain, as the wrinkles disappear and the film/mesh returns to a flat geometry. This bilinear stress-strain behavior has an extremely sharp transition point, defined by the magnitude of the prestrain. A theoretical model yields analytical expressions for the elastic and tangent moduli and the transition strain of the bilinear stress-strain relation, with quantitative correspondence to finite element analysis and experiments.

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