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Mechanically active materials in three-dimensional mesostructures

机译:三维介观结构中的机械活性材料

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Complex, three-dimensional (3D) mesostructures that incorporate advanced, mechanically active materials are of broad, growing interest for their potential use in many emerging systems. The technology implications range from precision-sensing microelectromechanical systems, to tissue scaffolds that exploit the principles of mechanobiology, to mechanical energy harvesters that support broad bandwidth operation. The work presented here introduces strategies in guided assembly and heterogeneous materials integration as routes to complex, 3D microscale mechanical frameworks that incorporate multiple, independently addressable piezoelectric thin-film actuators for vibratory excitation and precise control. The approach combines transfer printing as a scheme for materials integration with structural buckling as a means for 2D-to-3D geometric transformation, for designs that range from simple, symmetric layouts to complex, hierarchical configurations, on planar or curvilinear surfaces. Systematic experimental and computational studies reveal the underlying characteristics and capabilities, including selective excitation of targeted vibrational modes for simultaneous measurements of viscosity and density of surrounding fluids. The results serve as the foundations for unusual classes of mechanically active 3D mesostructures with unique functions relevant to biosensing, mechanobiology, energy harvesting, and others.
机译:包含先进的机械活性材料的复杂的三维(3D)介观结构因其在许多新兴系统中的潜在用途而受到广泛的关注。该技术的影响范围从精确感应的微机电系统到利用机械生物学原理的组织支架,再到支持宽带宽操作的机械能量收集器。此处介绍的工作介绍了引导组装和异质材料集成中的策略,作为通往复杂3D微型机械框架的途径,该框架包含多个可独立寻址的压电薄膜致动器,用于振动激励和精确控制。该方法将传递印刷作为一种材料集成方案与结构屈曲相结合,作为一种2D到3D几何变换的方法,适用于在平面或曲线表面上从简单,对称布局到复杂,分层配置的设计。系统的实验和计算研究揭示了潜在的特征和功能,包括选择性激发目标振动模式,以便同时测量周围流体的粘度和密度。这些结果为具有机械传感,机械生物学,能量收集等独特功能的非常规机械活性3D介观结构奠定了基础。

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