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Molecular Dynamics Studies on Application of Carbon Nanotubes and Graphene Sheets as Nanoresonator Sensors.

机译:碳纳米管和石墨烯片作为纳米谐振器传感器的分子动力学研究。

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摘要

The main objective of the research is to study the potential application of carbon nanotubes and graphene sheets as nano-resonator sensors in the detection of atoms/molecules with vibration and wave propagation analyses. It is also aimed to develop and examine new methods in the design of nano-resonator sensors for differentiating distinct gas atoms and different macromolecules, such as DNA molecules. The hypothesis in the detection techniques is that atoms or molecules attached on the surface of the nano-resonator sensors would induce a recognizable shift in the resonant frequency of or wave velocity in the sensors. With this regard, a sensitivity index based on the shift in resonant frequency of the sensors in the vibration analysis and/or a shift in wave velocity in the sensors in the wave propagation analysis is defined and examined.;Following the studies on vibration-based sensors, the wave propagation analysis in carbon nanotubes and graphene sheets is first investigated by using molecular dynamics simulations to design nano-resonator sensors. Moreover, a nonlocal finite element model is presented and calibrated for the first time to model propagation of mechanical waves in graphene sensors attached with atoms through a verification process with atomistic results. The simulation results reveal that the nano-resonator sensors are able to successfully detect distinct types of noble gases with the same mass density or at the same environmental condition of temperature and pressure.;In order to achieve the objective, the vibration characteristics of carbon nanotubes and graphenes are studied using molecular dynamics simulations to first propose nano-resonator sensors, which are able to differentiate distinct gas atoms with high enough resolutions even at low concentration. It is also indicated that the nano-resonator sensors are effective devices to identify different genes even with the same number of nucleobases in the structure of single-strand DNA macromolecules. The effect of various parameters such as size and restrained boundary conditions of the sensors, the position of attached atoms/molecules being detected, and environment temperature on the sensitivity of the sensors is investigated in detail.
机译:该研究的主要目的是研究碳纳米管和石墨烯片作为纳米谐振器传感器在通过振动和波传播分析检测原子/分子中的潜在应用。它还旨在开发和检验设计用于区分不同气体原子和不同大分子(例如DNA分子)的纳米谐振器传感器的新方法。检测技术的假设是,附着在纳米谐振器传感器表面的原子或分子将在传感器的谐振频率或波速中引起可识别的偏移。因此,基于振动分析中的传感器的共振频率的变化和/或在波传播分析中的传感器中的波速的变化,来确定并检查灵敏度指标。传感器,首先通过使用分子动力学模拟设计纳米谐振器传感器来研究碳纳米管和石墨烯片中的波传播分析。此外,首次提出并校准了非局部有限元模型,以通过原子过程的验证过程对机械原子在附着有原子的石墨烯传感器中的传播进行建模。仿真结果表明,纳米谐振器传感器能够成功地检测出具有相同质量密度或在相同温度和压力环境条件下的稀有气体类型;为了达到目标,碳纳米管的振动特性分子动力学模拟研究了石墨烯和石墨烯,首次提出了纳米谐振器传感器,即使在低浓度下也能够以足够高的分辨率区分不同的气体原子。还表明,即使在单链DNA大分子的结构中具有相同数目的核碱基,纳米共振传感器也是识别不同基因的有效装置。详细研究了各种参数的影响,例如传感器的尺寸和受约束的边界条件,检测到的附着原子/分子的位置以及环境温度对传感器灵敏度的影响。

著录项

  • 作者

    Arash, Behrouz.;

  • 作者单位

    University of Manitoba (Canada).;

  • 授予单位 University of Manitoba (Canada).;
  • 学科 Engineering Mechanical.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 141 p.
  • 总页数 141
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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