...
首页> 外文期刊>Physics Reports: A Review Section of Physics Letters (Section C) >Nanomechanical resonators and their applications in biological/chemical detection: Nanomechanics principles
【24h】

Nanomechanical resonators and their applications in biological/chemical detection: Nanomechanics principles

机译:纳米机械共振器及其在生物/化学检测中的应用:纳米机械原理

获取原文
获取原文并翻译 | 示例
           

摘要

Recent advances in nanotechnology have led to the development of nano-electro-mechanical systems (NEMS) such as nanomechanical resonators, which have recently received significant attention from the scientific community. This is not only due to their capability of label-free detection of bio/chemical molecules at single-molecule (or atomic) resolution for future applications such as the early diagnosis of diseases like cancer, but also due to their unprecedented ability to detect physical quantities such as molecular weight, elastic stiffness, surface stress, and surface elastic stiffness for adsorbed molecules on the surface. Most experimental works on resonator-based molecular detection have been based on the principle that molecular adsorption onto a resonator surface increases the effective mass, and consequently decreases the resonant frequencies of the nanomechanical resonator. However, this principle is insufficient to provide fundamental insights into resonator-based molecular detection at the nanoscale; this is due to recently proposed novel nanoscale detection principles including various effects such as surface effects, nonlinear oscillations, coupled resonance, and stiffness effects. Furthermore, these effects have only recently been incorporated into existing physical models for resonators, and therefore the universal physical principles governing nanoresonator-based detection have not been completely described. Therefore, our objective in this review is to overview the current attempts to understand the underlying mechanisms in nanoresonator-based detection using physical models coupled to computational simulations and/or experiments. Specifically, we will focus on issues of special relevance to the dynamic behavior of nanoresonators and their applications in biological/chemical detection: the resonance behavior of microanoresonators; resonator-based chemical/biological detection; physical models of various nanoresonators such as nanowires, carbon nanotubes, and graphene. We pay particular attention to experimental and computational approaches that have been useful in elucidating the mechanisms underlying the dynamic behavior of resonators across multiple and disparate spatial/length scales, and the resulting insight into resonator-based detection that has been obtained. We additionally provide extensive discussion regarding potentially fruitful future research directions coupling experiments and simulations in order to develop a fundamental understanding of the basic physical principles that govern NEMS and NEMS-based sensing and detection applications.
机译:纳米技术的最新进展导致了诸如纳米机械谐振器之类的纳米电子机械系统(NEMS)的发展,近来,纳米电子机械系统受到了科学界的极大关注。这不仅是因为它们具有以单分子(或原子)分辨率无标记地检测生物/化学分子的能力,以用于未来的应用(例如癌症等疾病的早期诊断),而且还因为它们具有空前的检测物理的能力。吸附分子在表面上的分子量,弹性刚度,表面应力和表面弹性刚度等数量。关于基于共振器的分子检测的大多数实验工作都是基于这样的原理,即分子吸附到共振器表面上会增加有效质量,因此会降低纳米机械共振器的共振频率。但是,该原理不足以为纳米级基于共振器的分子检测提供基本的见识。这是由于最近提出的新颖的纳米级检测原理,包括各种效应,例如表面效应,非线性振荡,耦合共振和刚度效应。此外,这些效应直到最近才被并入到现有的谐振器物理模型中,因此尚未完全描述控制基于纳米谐振器的检测的通用物理原理。因此,我们在这篇综述中的目的是概述当前尝试使用耦合到计算模拟和/或实验的物理模型来理解基于纳米谐振器的检测的潜在机制。具体来说,我们将关注与纳米谐振器的动态行为及其在生化检测中的应用特别相关的问题:微/纳米谐振器的谐振行为;基于共振器的化学/生物检测;各种纳米谐振器的物理模型,例如纳米线,碳纳米管和石墨烯。我们特别关注实验和计算方法,这些方法可用于阐明跨多个不同的空间/长度标度的谐振器动态行为的基础机制,以及对已获得的基于谐振器的检测的深刻见解。此外,我们还将就潜在的富有成果的未来研究方向耦合实验和模拟提供广泛的讨论,以便对控制NEMS和基于NEMS的传感和检测应用的基本物理原理有基本的了解。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号