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用于生物应用的三维表面声学微加工。

Acoustic micromachining of three-dimensional surfaces for biological applications.

作者信息

Entcheva Emilia, Bien Harold

机构信息

Department of Biomedical Engineering, Stony Brook University, HSC T18-030, Stony Brook, NY 11794-8181, USA.

出版信息

Lab Chip. 2005 Feb;5(2):179-83. doi: 10.1039/b409478f. Epub 2004 Nov 22.

Abstract

We present the use of an accessible micromachining technique (acoustic micromachining) for manufacturing micron-feature surfaces with non-discretely varying depth. Acoustic micromachining allows for non-photolithographic production of metal templates with programmable spatial patterns and involves the use of standard acoustic, cutting and electroplating equipment for mass production of vinyl records. Simple 3D patterns were transferred from an acoustic signal into working nickel templates, from which elastic polymer molds were obtained, featuring deep surface grooves and non-discrete (smooth) variations in the z-dimension. Versatility and applicability of the method is demonstrated in obtaining microfluidics structures, manufacturing high-surface area wavy polymer fibers, assembly of cell networks on scaffolds with 3D topography, and microcontact printing of proteins and cells.

摘要

我们展示了一种可用于制造具有非离散变化深度的微米级特征表面的简易微加工技术(声学微加工)。声学微加工允许通过非光刻方式生产具有可编程空间图案的金属模板,并且涉及使用标准的声学、切割和电镀设备来大规模生产乙烯基唱片。简单的三维图案从声学信号转移到工作镍模板中,由此获得了弹性聚合物模具,其具有深表面凹槽以及在z维度上的非离散(平滑)变化。该方法在获得微流控结构、制造高表面积波浪状聚合物纤维、在具有三维形貌的支架上组装细胞网络以及蛋白质和细胞的微接触印刷方面展示了其通用性和适用性。

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