分子纳米网络中基于扩散的通道表征

I. Llatser, E. Alarcón, Massimiliano Pierobony
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引用次数: 67

摘要

纳米技术使一到几百纳米的设备得以发展,这些设备被称为纳米机器。这些纳米机器将如何进行通信仍是一个悬而未决的问题。分子通信是一种很有前途的范例,已经提出了实现纳米网络,即纳米机器的互连。最近的研究试图建立分子通信的物理通道模型,主要是从通信或信息理论的角度出发。在这项工作中,我们重点研究了基于扩散的分子通信,其物理通道受菲克扩散定律的支配。我们采用两种互补的方法来表征分子通道:首先,我们获得了通道的脉冲响应、传递函数和群延迟;其次,我们提出了一种基于脉冲的调制方案,我们得到了最相关的性能评估指标的解析表达式,我们也通过仿真验证了这一点。最后,我们将这些指标的可扩展性与无线电磁信道中的等效指标进行了比较。我们认为这些结果提供了有趣的见解,可以作为设计人员实施未来分子纳米网络的指南。
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Diffusion-based channel characterization in molecular nanonetworks
Nanotechnology is enabling the development of devices in a scale ranging from one to a few hundred nanometers, known as nanomachines. How these nanomachines will communicate is still an open debate. Molecular communication is a promising paradigm that has been proposed to implement nanonetworks, i.e., the interconnection of nanomachines. Recent studies have attempted to model the physical channel of molecular communication, mainly from a communication or information-theoretical point of view. In this work, we focus on the diffusion-based molecular communication, whose physical channel is governed by Fick's laws of diffusion. We characterize the molecular channel following two complementary approaches: first, we obtain the channel impulse response, transfer function and group delay; second, we propose a pulse-based modulation scheme and we obtain analytical expressions for the most relevant performance evaluation metrics, which we also validate by simulation. Finally, we compare the scalability of these metrics with their equivalents in a wireless electromagnetic channel. We consider that these results provide interesting insights which may serve designers as a guide to implement future molecular nanonetworks.
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