Department of Materials Science, State Key Laboratory of ASIC and Systems, Fudan University, 220 Handan Road, Shanghai, 200433, China.
State Key Laboratory of Functional Materials for Informatics, Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences, Shanghai, 200050, China.
Nat Commun. 2021 Jan 21;12(1):509. doi: 10.1038/s41467-020-20843-4.
Motile plant structures such as Mimosa pudica leaves, Impatiens glandulifera seedpods, and Dionaea muscipula leaves exhibit fast nastic movements in a few seconds or less. This motion is stimuli-independent mechanical movement following theorema egregium rules. Artificial analogs of tropistic motion in plants are exemplified by shape-morphing systems, which are characterized by high functional robustness and resilience for creating 3D structures. However, all shape-morphing systems developed so far rely exclusively on continuous external stimuli and result in slow response. Here, we report a Gaussian-preserved shape-morphing system to realize ultrafast shape morphing and non-volatile reconfiguration. Relying on the Gaussian-preserved rules, the transformation can be triggered by mechanical or thermal stimuli within a microsecond. Moreover, as localized energy minima are encountered during shape morphing, non-volatile configuration is preserved by geometrically enhanced rigidity. Using this system, we demonstrate a suite of electronic devices that are reconfigurable, and therefore, expand functional diversification.
含羞草叶片、凤仙花蒴果和捕蝇草叶片等运动型植物结构能够在几秒钟或更短的时间内产生快速的向性运动。这种运动是一种独立于刺激的机械运动,遵循着卓越法则。植物向性运动的人工模拟例子是形状变形系统,其具有高度的功能鲁棒性和弹性,可用于创建 3D 结构。然而,迄今为止开发的所有形状变形系统都完全依赖于连续的外部刺激,并且导致响应缓慢。在这里,我们报告了一种高斯保持形状变形系统,以实现超快的形状变形和非易失性重构。依靠高斯保持规则,转换可以在微秒内由机械或热刺激触发。此外,由于在形状变形过程中遇到局部能量极小值,因此通过几何增强的刚性来保持非易失性配置。使用该系统,我们展示了一系列可重构的电子设备,从而扩展了功能多样化。