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Characterization of a Solid State DNA Nanopore Sequencer Using Multi-scale (Nano-to-Device) Modeling

机译:使用多尺度(纳米到装置)建模的固态DNA纳米孔序列仪的表征

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Nanobiotechnology is a rapidly advancing frontier of science with great potential for beneficial impact on society. Unfortunately, design of integrated nano-bio systems is a complex, laborious task with large failure rates. Current models describing molecular level behavior are expensive, while device design codes lack the necessary nanophysics. The objective of this work is to demonstrate multiscale, multiphysics modeling of an integrated nanobio device, where nanoscale effects are efficiently integrated with a continuum model. A three-level modeling paradigm was developed for this purpose. The feasibility of this approach is demonstrated by characterizing a nanopore-based DNA sequencing device. In the demonstration calculations, the dependence of the device performance on the nucleotide sequence, pore diameter, and applied voltage was determined. Extension of the approach for describing biomolecular processes in other commercial nanobiosystems is discussed. The main conclusions of the device level simulations are presented along with an overview of future work.
机译:纳米生物技术是一种迅速推进的科学前沿,具有对社会有益影响的巨大潜力。不幸的是,集成纳米生物系统的设计是一个复杂,艰苦的任务,失败率大。描述分子水平行为的当前模型是昂贵的,而设备设计代码缺乏必要的纳米物理学。这项工作的目的是演示多尺度的集成纳米氧化纳米器件的多发性模型,其中纳米级效应与连续体模型有效地集成。为此目的开发了一种三级建模范式。通过表征基于纳米孔的DNA测序装置来证明这种方法的可行性。在演示计算中,确定器件性能对核苷酸序列,孔径和施加电压的依赖性。讨论了描述其他商业纳米烃系统中的生物分子过程的方法的延伸。随着未来工作的概述,提供了设备级模拟的主要结论。

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