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Fabrication of Low Noise Borosilicate Glass Nanopores for Single Molecule Sensing

机译:用于单分子传感的低噪声硼硅酸盐玻璃纳米孔的制备

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摘要

We show low-cost fabrication and characterization of borosilicate glass nanopores for single molecule sensing. Nanopores with diameters of ~100 nm were fabricated in borosilicate glass capillaries using laser assisted glass puller. We further achieve controlled reduction and nanometer-size control in pore diameter by sculpting them under constant electron beam exposure. We successfully fabricate pore diameters down to 6 nm. We next show electrical characterization and low-noise behavior of these borosilicate nanopores and compare their taper geometries. We show, for the first time, a comprehensive characterization of glass nanopore conductance across six-orders of magnitude (1M-1μM) of salt conditions, highlighting the role of buffer conditions. Finally, we demonstrate single molecule sensing capabilities of these devices with real-time translocation experiments of individual λ-DNA molecules. We observe distinct current blockage signatures of linear as well as folded DNA molecules as they undergo voltage-driven translocation through the glass nanopores. We find increased signal to noise for single molecule detection for higher trans-nanopore driving voltages. We propose these nanopores will expand the realm of applications for nanopore platform.
机译:我们展示了用于单分子传感的低成本制造和表征硼硅酸盐玻璃纳米孔。使用激光辅助玻璃拉拔器在硼硅酸盐玻璃毛细管中制造直径约100 nm的纳米孔。通过在恒定的电子束曝光下雕刻它们,我们进一步实现了孔径的可控减小和纳米尺寸控制。我们成功地制造了直径低至6 nm的孔径。接下来,我们将显示这些硼硅酸盐纳米孔的电特性和低噪声行为,并比较它们的锥度几何形状。我们首次展示了盐条件下六个数量级(1M-1μM)范围内玻璃纳米孔电导的全面表征,突出了缓冲条件的作用。最后,我们通过单个λ-DNA分子的实时易位实验证明了这些设备的单分子传感功能。我们观察到线性和折叠的DNA分子在通过玻璃纳米孔进行电压驱动的移位时的明显电流阻滞特征。我们发现,对于更高的跨纳米孔驱动电压,单分子检测的信噪比增加。我们建议这些纳米孔将扩大纳米孔平台的应用领域。

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  • 期刊名称 other
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  • 年(卷),期 -1(11),6
  • 年度 -1
  • 页码 e0157399
  • 总页数 15
  • 原文格式 PDF
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