Department of Mechanical Sciences and Engineering, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, USA.
Department of Bioengineering, Harvard University, Cambridge, MA, 02138, USA.
Adv Mater. 2019 Dec;31(52):e1905715. doi: 10.1002/adma.201905715. Epub 2019 Nov 13.
3D structures that incorporate high-performance electronic materials and allow for remote, on-demand 3D shape reconfiguration are of interest for applications that range from ingestible medical devices and microrobotics to tunable optoelectronics. Here, materials and design approaches are introduced for assembly of such systems via controlled mechanical buckling of 2D precursors built on shape-memory polymer (SMP) substrates. The temporary shape fixing and recovery of SMPs, governed by thermomechanical loading, provide deterministic control over the assembly and reconfiguration processes, including a range of mechanical manipulations facilitated by the elastic and highly stretchable properties of the materials. Experimental demonstrations include 3D mesostructures of various geometries and length scales, as well as 3D aquatic platforms that can change trajectories and release small objects on demand. The results create many opportunities for advanced, programmable 3D microsystem technologies.
对可远程、按需 3D 形状重构的包含高性能电子材料的 3D 结构的研究,兴趣点在于从可摄入医疗设备和微型机器人到可调谐光电子学等应用。在此,通过在形状记忆聚合物 (SMP) 基底上构建的 2D 前体的受控机械屈曲,引入了用于此类系统组装的材料和设计方法。SMP 的临时形状固定和恢复受热机械载荷控制,为组装和重构过程提供了确定性控制,包括材料的弹性和高拉伸性所带来的各种机械操作。实验演示包括各种几何形状和长度尺度的 3D 介观结构,以及可按需改变轨迹和释放小物体的 3D 水生平台。这些结果为先进的可编程 3D 微系统技术创造了许多机会。