Improved protein-adsorption resistance of digital microfluidic device via surface coating and structure modification

Shun-Yuan Chen, Heng-Cang Hu, Chih-Sheng Yu, Yi-Chiuen Hu
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Abstract

The surface of solid indium tin oxide (ITO) glass supports for samples in electrowetting system needs to be protein-resistant. Since Teflon is the most conventional coating material used to improve the contact angle between the glass and solvent, it still unable to prevent nonspecific proteins adsorption absolutely under the applied potential. In this paper, we described a feasible method that could minimize non-specific proteins adsorption most probably during droplet processing. A regular micro-scale structure was patterned by photolithography, and dielectric layer was covered on the electrodes. Finally a thin layer of Sigmacoat® was coated by physical vapor deposition. The surface characteristic of our chip was analyzed by atomic force microscopy and Contact Angle Analyzer. We found that the adhesion of bio-molecule was efficiently decreased by this modified processing, and could prevent electrolysis more efficiently.
通过表面涂层和结构修饰提高数字微流控装置的蛋白质吸附阻力
在电润湿系统中,用于样品的固体氧化铟锡(ITO)玻璃支架的表面需要具有抗蛋白质性。由于聚四氟乙烯是最常用的用于改善玻璃与溶剂接触角的涂层材料,在应用电位下,它仍然不能绝对阻止非特异性蛋白质的吸附。在本文中,我们描述了一种可行的方法,可以最大限度地减少非特异性蛋白质在液滴加工过程中的吸附。利用光刻技术在电极上覆盖介电层,形成了规则的微尺度结构。最后,通过物理气相沉积涂覆一层薄薄的Sigmacoat®。用原子力显微镜和接触角分析仪分析了芯片的表面特性。我们发现这种改性处理有效地降低了生物分子的粘附,并能更有效地防止电解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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