Electrophoretic Molecular Communication with Time-Varying Electric Fields
Sunghwan Cho, Thomas C. Sykes, Justin P. Coon, and Alfonso A., Castrej\'on-Pita

TL;DR
This paper introduces a novel electrophoretic molecular communication method using time-varying electric fields to enhance data transmission, optimize signal parameters, and reduce error rates through analytical and simulation-based validation.
Contribution
It develops an optimized time-varying electric field design for molecular communication and verifies its effectiveness through analytical derivation and Monte-Carlo simulations.
Findings
Significant increase in observed molecules at the receiver
Reduction in bit-error probability
Optimal signal parameters for sinusoidal fields
Abstract
This article investigates a novel electrophoretic molecular communication mechanism that utilizes a time-varying electric field, which induces time-varying molecule velocities and in turn improves communication performance. For a sinusoidal field, we specify favorable signal parameters (e.g., phase and frequency) that yield excellent communication link performance. We also analytically derive an optimized field function by formulating an appropriate cost function and solving the Euler-Lagrange equation. In our setup, the field strength is proportional to the molecular velocity; we verify this assumption by solving the Basset-Boussinesq-Oseen equation for a given time-varying electric field (forcing function) and examining its implications for practical physical parameterizations of the system. Our analysis and Monte-Carlo simulation results demonstrate that the proposed time-varying…
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