Kwak Ji-Youn, Jeong Ji-Young, Kwon Ye-Pil, Seo Dong-Hyun, Kang Chung-Mo, Kim Dong-Hyeon, Han Jun Sae, Gwak Eun-Ji, Choi Doo-Sun, Kim Ju-Young, Je Tae-Jin, Jeon Eun-Chae
School of Materials Science and Engineering, University of Ulsan, Ulsan, 44610, Republic of Korea.
Department of Materials Science and Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan, 44919, Republic of Korea.
Sci Rep. 2023 Nov 22;13(1):20460. doi: 10.1038/s41598-023-47569-9.
There has been significant research focused on the development of stretchable materials that can provide a large area with minimal material usage for use in solar cells and displays. However, most materials exhibit perpendicular shrinkage when stretched, which is particularly problematic for polymer-based substrates commonly used in stretchable devices. To address this issue, biaxial strain-controlled substrates have been proposed as a solution to increase device efficiency and conserve material resources. In this study, we present the design and fabrication of a biaxial strain-controlled substrate with a re-entrant honeycomb structure and a negative Poisson's ratio. Using a precisely machined mold with a shape error of less than 0.15%, we successfully fabricated polydimethylsiloxane substrates with a 500 μm thick re-entrant honeycomb structure, resulting in a 19.1% reduction in perpendicular shrinkage. This improvement translates to a potential increase in device efficiency by 9.44% and an 8.60% reduction in material usage for substrate fabrication. We demonstrate that this design and manufacturing method can be applied to the fabrication of efficient stretchable devices, such as solar cells and displays.
已有大量研究聚焦于可拉伸材料的开发,这类材料能够以最少的材料用量为大面积区域提供服务,用于太阳能电池和显示器。然而,大多数材料在拉伸时会出现垂直收缩,这对于可拉伸设备中常用的聚合物基基板来说尤其成问题。为了解决这个问题,双轴应变控制基板被提议作为一种提高设备效率和节约材料资源的解决方案。在本研究中,我们展示了一种具有凹腔蜂窝结构和负泊松比的双轴应变控制基板的设计与制造。使用形状误差小于0.15%的精密加工模具,我们成功制造出了具有500μm厚凹腔蜂窝结构的聚二甲基硅氧烷基板,垂直收缩率降低了19.1%。这种改进意味着设备效率可能提高9.44%,基板制造的材料用量减少8.60%。我们证明,这种设计和制造方法可应用于高效可拉伸设备的制造,如太阳能电池和显示器。