基于机械转导的纳米物联网分子通信接收器

Dilara Aktas, Ö. Akan
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引用次数: 2

摘要

分子通信(MC)是实现纳米网络最有前途的技术之一。尽管MC的许多方面都得到了广泛的研究,但MC接收器的物理设计却很少引起人们的兴趣。提出了基于生物场效应管的高性能MC接收器,并对其进行了广泛的分析。然而,他们面临着一些挑战,比如对带电分子的有限检测,德拜筛选,以及对参考电极的需求。为了克服这些缺点,我们提出了一种基于机械的转导方案。我们特别关注基于柔性场效应晶体管(FET)的MC接收器架构,该架构利用非线性机电耦合提供指数级高灵敏度。此外,用更简单的仪器检测中性分子是可能的。本文分析了其基本性能指标;灵敏度,噪声功率,信噪比,和符号误差概率,从MC理论的角度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Mechanical Transduction-Based Molecular Communication Receiver for Internet of Nano Things (IoNT)
Molecular communication (MC) is one of the most promising technology to enable nanonetworks. Despite many aspects of MC have been investigated broadly, the physical design of the MC receiver has gained little interest. High-performance MC receivers based on bioFETs are proposed and extensively analyzed. However, they have some challenges such as limited detection with charged molecules, Debye screening, and the need for reference electrodes. To overcome these shortcomings, we propose a mechanical-based transducing scheme. In particular, we focus on a Flexure field-effect transistor (FET)-based MC receiver architecture, which provides exponentially high sensitivity by utilizing a nonlinear electromechanical coupling. In addition, the detection of neutral molecules with much simpler instrumentation is possible. In this paper, we analyze its fundamental performance metrics; sensitivity, noise power, signal-to-noise ratio, and the symbol error probability, from an MC theoretical perspective.
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