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Solid-state nanopores and nanopore arrays optimized for optical detection

机译:固态纳米孔和纳米孔阵列优化光学检测

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While conventional solid-state nanopore measurements utilize ionic current, there is a growing interest in alternative sensing paradigms, including optical detection. However, a limiting factor in the application of optical schemes in particular is the inherent background fluorescence created by the solid-state membrane itself, which can interfere with the desired signal and place restrictions on the fluorophores that can be employed. An ideal device would incorporate a localized reduction in membrane fluorescence using a method that can be integrated easily with the nanopore fabrication process. Here, we demonstrate that in addition to forming nanopores and nanopore arrays, a focused helium ion beam can be used to reduce the fluorescence of a conventional silicon nitride membrane controllably. The reduction in background produces low-fluorescence devices that can be used for optical detection of double-strand DNA, as well as for conventional resistive pulse sensing. This approach is used to identify the translocation of short single-strand DNA through individual nanopores within an array, creating potential for a massively-parallel detection scheme.
机译:虽然传统固态纳米孔利用离子电流测量,日益增长的兴趣替代感应范例,包括光学检测。一个限制因素在光学中的应用计划是固有的背景荧光产生的固态膜本身,从而干扰所需的信号和限制荧光团可以使用。结合局部减少膜荧光,可以使用一个方法集成与纳米孔制造容易的过程。形成纳米孔和纳米孔阵列,专注氦离子可以减少使用传统的氮化硅的荧光膜可控。背景产生low-fluorescence设备可用于光学检测的双链DNA,以及传统电阻脉冲感应。识别短的长串的易位DNA通过数组中的单个纳米孔,创造潜在的大规模并行检测方案。

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