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介绍电场制造:一种通过液体介电泳进行增材制造的方法。

Introducing electric field fabrication: A method of additive manufacturing via liquid dielectrophoresis.

作者信息

Duncan Josie L, Schultz Jeff, Barlow Zeke, Davalos Rafael V

机构信息

Bioelectromechanical Systems Laboratory, Department of Biomedical Engineering and Mechanics, Virginia Tech-Wake Forest University School of Biomedical Engineering and Sciences, Blacksburg VA, USA.

Department of Mechanical Engineering, Virginia Tech, Blacksburg VA, USA.

出版信息

Addit Manuf Lett. 2023 Feb;4. doi: 10.1016/j.addlet.2022.100107. Epub 2022 Nov 28.

Abstract

Biomedical devices with millimeter and micron-scaled features have been a promising approach to single-cell analysis, diagnostics, and fundamental biological and chemical studies. These devices, however, have not been able to fully embrace the advantages of additive manufacturing (AM) that offers quick prototypes and complexities not achievable via traditional 2D fabrication techniques (e.g., soft lithography). This slow adoption of AM can be attributed in part to limited material selection, resolution, and inability to easily integrate components mid-print. Here, we present the feasibility of using liquid dielectrophoresis to manipulate and shape a droplet of build material, paired with subsequent curing and stacking, to generate 3D parts. This Electric Field Fabrication (EFF) technique is an additive manufacturing method that offers advantages such as new printable materials and mixed-media parts without post-assembly for biomedical applications.

摘要

具有毫米和微米级特征的生物医学设备一直是单细胞分析、诊断以及基础生物学和化学研究的一种有前景的方法。然而,这些设备尚未能够充分利用增材制造(AM)的优势,增材制造能够提供快速原型,且具备传统二维制造技术(如软光刻)无法实现的复杂性。增材制造的这种缓慢采用部分可归因于材料选择有限、分辨率以及在打印过程中难以轻松集成组件。在此,我们展示了利用液体介电泳来操纵和塑造构建材料液滴,并随后进行固化和堆叠以生成三维部件的可行性。这种电场制造(EFF)技术是一种增材制造方法,具有诸如新型可打印材料和无需后期组装的混合介质部件等优势,适用于生物医学应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9f08/9941962/775b891f9658/nihms-1864406-f0001.jpg

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