The Institute of Scientific and Industrial Research, Osaka University , 8-1 Mihogaoka, Ibaraki, Osaka 567-0047, Japan.
School of Optical and Electronic Information, Huazhong University of Science and Technology , LuoYu Road, Wuhan 430074, China.
ACS Nano. 2016 Jan 26;10(1):803-9. doi: 10.1021/acsnano.5b05906. Epub 2015 Dec 7.
Resistive pulse sensing with nanopores having a low thickness-to-diameter aspect-ratio structure is expected to enable high-spatial-resolution analysis of nanoscale objects in a liquid. Here we investigated the sensing capability of low-aspect-ratio pore sensors by monitoring the ionic current blockades during translocation of polymeric nanobeads. We detected numerous small current spikes due to partial occlusion of the pore orifice by particles diffusing therein reflecting the expansive electrical sensing zone of the low-aspect-ratio pores. We also found wide variations in the ion current line-shapes in the particle capture stage suggesting random incident angle of the particles drawn into the pore. In sharp contrast, the ionic profiles were highly reproducible in the post-translocation regime by virtue of the spatial confinement in the pore that effectively constricts the stochastic capture dynamics into a well-defined ballistic motion. These results, together with multiphysics simulations, indicate that the resistive pulse height is highly dependent on the nanoscopic single-particle trajectories involved in ultrathin pore sensors. The present finding indicates the importance of regulating the translocation pathways of analytes in low-aspect-ratio pores for improving the discriminability toward single-bioparticle tomography in liquid.
具有低厚径比结构的纳米孔的电阻脉冲感应有望实现液体中纳米尺度物体的高空间分辨率分析。在这里,我们通过监测聚合物纳米珠在易位过程中产生的离子电流阻断,研究了低厚径比孔传感器的传感能力。我们检测到许多小的电流尖峰,这是由于粒子在其中扩散而部分阻塞孔口,反映了低厚径比孔的扩展电传感区。我们还发现,在粒子捕获阶段,离子电流线形状变化很大,这表明粒子以随机角度进入孔中。相比之下,由于空间限制在孔中,在易位后阶段,离子分布非常具有重现性,这有效地将随机捕获动力学限制在明确定义的弹道运动中。这些结果与多物理模拟一起表明,电阻脉冲高度高度依赖于参与超薄膜传感器的纳米级单个粒子轨迹。目前的发现表明,在低厚径比孔中调节分析物的易位途径对于提高液体中单生物粒子断层摄影术的可辨别性非常重要。