论文标题

基于石墨烯的纳米级分子通信接收器:制造和微流体分析

Graphene-based Nanoscale Molecular Communication Receiver: Fabrication and Microfluidic Analysis

论文作者

Kuscu, Murat, Ramezani, Hamideh, Dinc, Ergin, Akhavan, Shahab, Akan, Ozgur B.

论文摘要

生物启发的分子通信(MC),分子用于传输信息,这是实现纳米互联网事物(IONT)的最有前途的技术,这要归功于其固有的生物相容性,能源效率和在生理上与与生理相关的环境中的可靠性。尽管关于MC的理论工作大量大量,但缺乏实用的微/纳米级MC设备和MC测试床,导致研究人员过分简化了有关渠道条件的含义以及实践传递的物理体系结构在开发理论模型和MC的通信方法中的物理体系结构的假设。另一方面,MC构成了高度复杂,非线性,随时间变化的频道属性所带来的独特挑战,这些渠道属性无法始终通过传统的信息和通信工具和技术(ICT)来解决。结果,现有的MC方法的可靠性主要是通过电磁通信采用的,并且未用实际的测试台验证。作为消除这种差异的第一步,在这项研究中,我们报告了基于石墨烯场效果晶体管生物传感器的纳米级MC接收器的制造。我们在定制设计的微流体MC系统中执行其ICT表征,并将其编码到单链DNA分子的浓度中。这个实验平台是带有纳米级MC接收器的微型/纳米级MC系统的第一个实际实现,可以用作开发现实的MC方法和IONT应用的测试台。

Bio-inspired molecular communications (MC), where molecules are used to transfer information, is the most promising technique to realise the Internet of Nano Things (IoNT), thanks to its inherent biocompatibility, energy-efficiency, and reliability in physiologically-relevant environments. Despite a substantial body of theoretical work concerning MC, the lack of practical micro/nanoscale MC devices and MC testbeds has led researchers to make overly simplifying assumptions about the implications of the channel conditions and the physical architectures of the practical transceivers in developing theoretical models and devising communication methods for MC. On the other hand, MC imposes unique challenges resulting from the highly complex, nonlinear, time-varying channel properties that cannot be always tackled by conventional information and communication tools and technologies (ICT). As a result, the reliability of the existing MC methods, which are mostly adopted from electromagnetic communications and not validated with practical testbeds, is highly questionable. As the first step to remove this discrepancy, in this study, we report on the fabrication of a nanoscale MC receiver based on graphene field-effect transistor biosensors. We perform its ICT characterisation in a custom-designed microfluidic MC system with the information encoded into the concentration of single-stranded DNA molecules. This experimental platform is the first practical implementation of a micro/nanoscale MC system with nanoscale MC receivers, and can serve as a testbed for developing realistic MC methods and IoNT applications.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源