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首页> 外文期刊>ACS applied materials & interfaces >Poly(oligo(ethylene glycol) methyl ether methacrylate) Brushes on High-K Metal Oxide Dielectric Surfaces for Bioelectrical Environments
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Poly(oligo(ethylene glycol) methyl ether methacrylate) Brushes on High-K Metal Oxide Dielectric Surfaces for Bioelectrical Environments

机译:用于生物电环境的高k金属氧化物电介质表面上的聚(寡烷(乙二醇)甲基醚甲基丙烯酸酯)

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摘要

Advances in electronics and life sciences have generated interest in "lab-on-a-chip" systems utilizing complementary metal oxide semiconductor (CMOS) circuitry for low-power, portable, and cost-effective biosensing platforms. Here, we present a simple and reliable approach for coating "high-k" metal oxide dielectric materials with "non-fouling" (protein- and cell-resistant) poly(oligo(ethylene glycol) methyl ether methacrylate (POEGMA) polymer brushes as biointerfacial coatings to improve their relevance for biosensing applications utilizing advanced electronic components. By using a surface-initiated "grafting from" strategy, POEGMA films were reliably grown on each material, as confirmed by ellipsometric measurements and X-ray photoelectron spectroscopy (XPS) analysis. The electrical behavior of these POEGMA films was also studied to determine the potential impact on surrounding electronic devices, yielding information on relative permittivity and breakdown field for POEGMA in both dry and hydrated states. We show that the incorporation of POEGMA coatings significantly reduced levels of nonspecific protein adsorption compared to uncoated high-k dielectric oxide surfaces as shown by protein resistance assays. These attributes, combined with the robust dielectric properties of POEGMA brushes on high-k surfaces open the way to incorporate this protein and cell resistant polymer interface into CMOS devices for biomolecular detection in a complex liquid milieu.
机译:电子和生命科学的进步对利用互补金属氧化物半导体(CMOS)电路进行低功耗,便携式和经济高效的生物传感平台的兴趣产生了兴趣。在这里,我们提出了一种简单且可靠的方法,用于用“非结垢”(蛋白质和电池)聚(寡核苷酸(乙二醇)甲基醚甲基丙烯酸酯(POEGMA)聚合物刷作为生物接口涂层,提高利用先进电子元件的生物沉积应用的相关性。通过使用卓越素测量测量和X射线光电子光谱(XPS)分析确认的Poegma薄膜的表面引发的“嫁接”策略。 。还研究了这些豆类膜的电力行为,以确定对周围电子设备的潜在影响,在干燥和水合态中产生关于厚碱的相对介电常数和分解场的潜在影响。我们表明厚皮马涂层的掺入显着降低了与未涂覆的高k介电氧化物表面相比,非特异性蛋白质吸附,如蛋白质抗性Asa所示ys。这些属性与高k表面上的Poegma刷的鲁棒介电性能结合在络合液体环境中,将该蛋白质和细胞抗性聚合物界面掺入CMOS装置中的方式。

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