Chen Hang, Zhu Feng, Jang Kyung-In, Feng Xue, Rogers John A, Zhang Yihui, Huang Yonggang, Ma Yinji
Department of Engineering Mechanics; Center for Mechanics and Materials, Tsinghua University, Beijing, 100084, China.
Guangzhou Institute of Building Science, Technology Development Center, China, 510440, China.
J Mech Phys Solids. 2018 Nov;120:199-207. doi: 10.1016/j.jmps.2017.11.002. Epub 2017 Nov 7.
The concepts of open, cellular substrates for stretchable electronic systems are of interest partly due to their ability to minimize disruptions to the natural diffusive or convective flow of bio-fluids in advanced, bio-integrated implants. The overall elastic properties, and in particular the stretchability, of such systems are difficult to determine, however, because they depend strongly on the alignment and position of the serpentine interconnects relative to the openings in the cellular substrate, which is difficult to precisely control, even with the assistance of precision stages and visualization hardware. This paper establishes an analytic constitutive model for an equivalent medium for a cellular substrate under finite deformation. Results demonstrate that the elastic stretchability of a serpentine interconnect bonded to this equivalent medium represents a lower-bound estimate for the case of the actual cellular substrate, where the bonding adopts different alignments and positions. This finding provides a simple, conservative estimate of stretchability, which has general utility as an engineering design rule for platforms that exploit cellular substrates in stretchable electronics.
可拉伸电子系统的开放式细胞基底概念之所以受到关注,部分原因在于它们能够最大限度地减少对先进生物集成植入物中生物流体自然扩散或对流的干扰。然而,此类系统的整体弹性特性,尤其是拉伸性,却难以确定,因为它们在很大程度上取决于蜿蜒互连相对于细胞基底中开口的排列和位置,即使借助精密平台和可视化硬件,这也很难精确控制。本文建立了有限变形下细胞基底等效介质的解析本构模型。结果表明,与这种等效介质结合的蜿蜒互连的弹性拉伸性代表了实际细胞基底情况下的下限估计,其中结合采用不同的排列和位置。这一发现提供了一个简单、保守的拉伸性估计,作为在可拉伸电子学中利用细胞基底的平台的工程设计规则具有普遍实用性。