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Pulsed plasma polymerization for controlling shrinkage and surface composition of nanopores

机译:脉冲等离子体聚合用于控制纳米孔的收缩和表面组成

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Solid-state nanopores have emerged as sensors for single molecules and these have been employed to examine the biophysical properties of an increasingly large variety of biomolecules. Herein we describe a novel and facile approach to precisely adjust the pore size, while simultaneously controlling the surface chemical composition of the solid-state nanopores. Specifically, nanopores fabricated using standard ion beam technology are shrunk to the requisite molecular dimensions via the deposition of highly conformal pulsed plasma generated thin polymeric films. The plasma treatment process provides accurate control of the pore size as the conformal film deposition depends linearly on the deposition time. Simultaneously, the pore and channel chemical compositions are controlled by appropriate selection of the gaseous monomer and plasma conditions employed in the deposition of the polymer films. The controlled pore shrinkage is characterized with high resolution AFM, and the film chemistry of the plasma generated polymers is analyzed with FTIR and XPS. The stability and practical utility of this new approach is demonstrated by successful single molecule sensing of double-stranded DNA. The process offers a viable new advance in the fabrication of tailored nanopores, in terms of both the pore size and surface composition, for usage in a wide range of emerging applications.
机译:固态纳米孔已成为单分子的传感器,并且已被用于检查越来越多的生物分子的生物物理特性。本文中,我们描述了一种新颖且简便的方法,可以精确地调节孔径,同时控制固态纳米孔的表面化学组成。具体而言,通过沉积高度保形的脉冲等离子体产生的聚合物薄膜,将使用标准离子束技术制造的纳米孔缩小至所需的分子尺寸。等离子体处理工艺可提供对孔径的精确控制,因为共形膜的沉积与沉积时间线性相关。同时,通过适当选择气态单体和在聚合物膜的沉积中使用的等离子体条件来控制孔和通道的化学组成。可控的孔收缩具有高分辨率的AFM,并通过FTIR和XPS分析了等离子体产生的聚合物的膜化学。通过对双链DNA的成功单分子传感,证明了这种新方法的稳定性和实用性。就孔径和表面组成而言,该方法在定制纳米孔的制造方面提供了可行的新进展,可广泛用于新兴应用中。

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