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Assembly of multicomponent structures from hundreds of micron-scale building blocks using optical tweezers

机译:使用光学镊子组装来自数百微米级构建块的多组分结构

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摘要

Abstract The fabrication of three-dimensional (3D) microscale structures is critical for many applications, including strong and lightweight material development, medical device fabrication, microrobotics, and photonic applications. While 3D microfabrication has seen progress over the past decades, complex multicomponent integration with small or hierarchical feature sizes is still a challenge. In this study, an optical positioning and linking (OPAL) platform based on optical tweezers is used to precisely fabricate 3D microstructures from two types of micron-scale building blocks linked by biochemical interactions. A computer-controlled interface with rapid on-the-fly automated recalibration routines maintains accuracy even after placing many building blocks. OPAL achieves a 60-nm positional accuracy by optimizing the molecular functionalization and laser power. A two-component structure consisting of 448 1-µm building blocks is assembled, representing the largest number of building blocks used to date in 3D optical tweezer microassembly. Although optical tweezers have previously been used for microfabrication, those results were generally restricted to single-material structures composed of a relatively small number of larger-sized building blocks, with little discussion of critical process parameters. It is anticipated that OPAL will enable the assembly, augmentation, and repair of microstructures composed of specialty micro/nanomaterial building blocks to be used in new photonic, microfluidic, and biomedical devices.
机译:抽象三维(3D)微尺度结构的制造是许多应用,包括强和重量轻的材料开发,医疗器件制造中,微型机器人,和光子应用是至关重要的。虽然3D微已经看到在过去几十年的进步,与小或分层特征尺寸的复杂的多组分整合仍然是一个挑战。在这项研究中,光的定位和基于光学镊子联(OPAL)平台被用来从两种类型的生物化学相互作用连接的微米级构建块的精确编造三维微结构。计算机控制界面迅速上即时自动校准例程,甚至将许多积木之后也能保持准确度。 OPAL通过优化分子官能化和激光功率达到一个60纳米的位置精度。由448 1微米积木一种双组分结构被组装时,表示构建用于迄今在3D光学镊子微组装的块的数量最多。虽然光学镊子先前已经用于微细加工,这些结果一般限于相对小数目的较大尺寸的结构单元的组成单一材料的结构,与关键过程参数的小讨论。可以预料,OPAL将使组件,增强,和特殊微/纳米材料构建块构成的微结构的修复在新光子,微流体,及生物医学装置中使用。

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