Center for Mechanics of Solids, Structures and Materials, Department of Aerospace Engineering and Engineering Mechanics, The University of Texas at Austin, TX 78712, USA.
Department of Mechanical Engineering, University of Wisconsin-Madison, Madison, WI 53706 - 1572, USA.
Sci Adv. 2023 Apr 21;9(16):eadf2709. doi: 10.1126/sciadv.adf2709. Epub 2023 Apr 19.
Three-dimensional surface-conformable electronics is a burgeoning technology with potential applications in curved displays, bioelectronics, and biomimetics. Flexible electronics are notoriously difficult to fully conform to nondevelopable surfaces such as spheres. Although stretchable electronics can well conform to nondevelopable surfaces, they need to sacrifice pixel density for stretchability. Various empirical designs have been explored to improve the conformability of flexible electronics on spherical surfaces. However, no rational design guidelines exist. This study uses a combination of experimental, analytical, and numerical approaches to systematically investigate the conformability of both intact and partially cut circular sheets on spherical surfaces. Through the analysis of thin film buckling on curved surfaces, we identify a scaling law that predicts the conformability of flexible sheets on spherical surfaces. We also quantify the effects of radial slits on enhancing conformability and provide a practical guideline for using these slits to improve conformability from 40% to more than 90%.
三维曲面顺应电子产品是一项新兴技术,具有在曲面显示器、生物电子学和仿生学方面的潜在应用。柔性电子产品很难完全顺应非可展曲面,如球体。虽然可拉伸电子产品可以很好地顺应非可展曲面,但它们需要为可拉伸性牺牲像素密度。已经探索了各种经验设计来提高柔性电子产品在球面上的顺应性。然而,没有合理的设计准则。本研究使用实验、分析和数值方法的组合,系统地研究了完整和部分切割的圆形薄片在球面上的顺应性。通过对曲面薄膜屈曲的分析,我们确定了一个预测柔性薄片在球面上顺应性的标度律。我们还量化了径向狭缝对增强顺应性的影响,并提供了一个实用的准则,用于使用这些狭缝将顺应性从 40%提高到 90%以上。