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小于喷雾羽流的表面的高效电喷雾沉积。

Efficient electrospray deposition of surfaces smaller than the spray plume.

作者信息

Park Sarah H, Lei Lin, D'Souza Darrel, Zipkin Robert, DiMartini Emily T, Atzampou Maria, Lallow Emran O, Shan Jerry W, Zahn Jeffrey D, Shreiber David I, Lin Hao, Maslow Joel N, Singer Jonathan P

机构信息

Department of Materials Science and Engineering, Rutgers, The State University of New Jersey, Piscataway, NJ, 08854, USA.

Department of Mechanical and Aerospace Engineering, Rutgers, The State University of New Jersey, Piscataway, NJ, 08854, USA.

出版信息

Nat Commun. 2023 Aug 14;14(1):4896. doi: 10.1038/s41467-023-40638-7.

Abstract

Electrospray deposition (ESD) is a promising technique for depositing micro-/nano-scale droplets and particles with high quality and repeatability. It is particularly attractive for surface coating of costly and delicate biomaterials and bioactive compounds. While high efficiency of ESD has only been successfully demonstrated for spraying surfaces larger than the spray plume, this work extends its utility to smaller surfaces. It is shown that by architecting the local "charge landscape", ESD coatings of surfaces smaller than plume size can be achieved. Efficiency approaching 100% is demonstrated with multiple model materials, including biocompatible polymers, proteins, and bioactive small molecules, on both flat and microneedle array targets. UV-visible spectroscopy and high-performance liquid chromatography measurements validate the high efficiency and quality of the sprayed material. Here, we show how this process is an efficient and more competitive alternative to other conformal coating mechanisms, such as dip coating or inkjet printing, for micro-engineered applications.

摘要

电喷雾沉积(ESD)是一种很有前景的技术,可用于高质量且可重复地沉积微米/纳米级液滴和颗粒。对于昂贵且易碎的生物材料和生物活性化合物的表面涂层而言,它尤其具有吸引力。虽然仅在喷涂大于喷雾羽流的表面时才成功证明了ESD的高效率,但这项工作将其应用扩展到了更小的表面。结果表明,通过构建局部“电荷分布”,可以实现小于羽流尺寸的表面的ESD涂层。在平面和微针阵列靶材上,使用多种模型材料(包括生物相容性聚合物、蛋白质和生物活性小分子)证明了效率接近100%。紫外可见光谱和高效液相色谱测量验证了喷涂材料的高效率和高质量。在这里,我们展示了对于微工程应用而言,该工艺如何成为浸涂或喷墨打印等其他保形涂层机制的一种高效且更具竞争力的替代方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/55bb/10425365/a6ee6fd8750d/41467_2023_40638_Fig1_HTML.jpg

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