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Transformative Two-Dimensional Array Configurations by Geometrical Shape-Shifting Protein Microstructures

机译:通过几何形状变化的蛋白质微结构的二维变换阵列配置。

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摘要

Two-dimensional (2D) geometrical shape-shifting is prevalent in nature, but remains challenging in man-made "smart" materials, which are typically limited to single-direction responses. Here, we fabricate geometrical shape-shifting bovine serum albumin (BSA) microstructures to achieve circle-to-polygon and polygon-to-circle geometrical transformations. In addition, transformative two-dimensional microstructure arrays are demonstrated by the ensemble of these responsive microstructures to confer structure-to-function properties. The design strategy of our geometrical shape-shifting microstructures focuses on embedding precisely positioned rigid skeletal frames within responsive BSA matrices to direct their anisotropic swelling under pH stimulus. This is achieved using layer-by-layer two photon lithography, which is a direct laser writing technique capable of rendering spatial resolution in the submicrometer length scale. By controlling the shape, orientation and number of the embedded skeletal frames, we have demonstrated well-defined arc-to-corner and corner-to-arc transformations, which are essential for dynamic circle-to-polygon and polygon-to-circle shape-shifting, respectively. We further fabricate our shape-shifting microstructures in periodic arrays to experimentally demonstrate the first transformative 2D patterned arrays. Such versatile array configuration transformations give rise to structure-to-physical properties, including array porosity and pore shape, which are crucial for the development of on-demand multifunctional "smart" materials, especially in the field of photonics and microfluidics.
机译:二维(2D)几何形状移动本质上很普遍,但是在人造“智能”材料中仍然具有挑战性,人造材料通常仅限于单向响应。在这里,我们制作几何形状变化的牛血清白蛋白(BSA)的微结构,以实现圆到多边形和多边形到圆的几何变换。另外,这些响应性微结构的整体展示了可转换的二维微结构阵列,赋予了结构到功能特性。我们的几何形状转变微结构的设计策略着重于将精确定位的刚性骨架嵌入到响应性BSA矩阵中,以指导其在pH刺激下的各向异性膨胀。这是使用逐层两光子光刻技术实现的,这是一种直接的激光写入技术,能够在亚微米长度范围内提供空间分辨率。通过控制嵌入式骨骼框架的形状,方向和数量,我们展示了定义明确的弧到角和角到弧的转换,这对于动态的圆到多边形和多边形到圆的形状是必不可少的-分别移动。我们进一步在周期阵列中制造出形状偏移的微结构,以实验证明第一个可转换2D图案化阵列。这种通用的阵列配置转换会产生结构到物理的特性,包括阵列孔隙率和孔隙形状,这对于按需多功能“智能”材料的开发至关重要,特别是在光子学和微流体领域。

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