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Characterization of an Inductance-based Detector in Molecular Communication Testbed Based on Superparamagnetic Iron Oxide Nanoparticles

机译:基于超顺磁性氧化铁纳米颗粒的分子通信试验中基于电感式检测器的表征

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Molecular communication (MC), using chemicals or particles, is a promising approach to bridge the gaps of conventional communication systems, e.g. in nano-scale or in pipelines. Our testbed depends on superparamagnetic iron oxide nanoparticles (SPIONs) as information carriers, which are detected using a susceptometer. In this paper, we study how the position and distribution of particles near the susceptometer, i.e., coil, affect its detected signal. When the particles move axially through the coil, an increment in the signal is detected. In addition, we observed a nonlinear additive behaviour of inductance in the same axial direction, i.e., changes in inductance due to partial volumes are not additive. An exponentially-like signal is detected when the particles move radially through the coil. Moreover, a linear additive behaviour of inductance is observed in this direction. Increasing the magnetic susceptibility has a significant effect on the detected signal. However, the susceptibility of SPIONs is relatively small in order to keep superparamagnetic properties. The coil inductance depends not only on the volume, or permeability of magnetic particles in its core, but also on how they are distributed inside.
机译:使用化学物质或颗粒的分子通信(MC)是弥合传统通信系统间隙的有希望的方法,例如,在纳米级或管道中。我们的试验台取决于超顺磁性氧化铁纳米颗粒(散块)作为信息载体,其使用受影响表检测。在本文中,我们研究了粒子附近粒子附近的位置和分布如何影响其检测到的信号。当颗粒轴向通过线圈移动时,检测信号中的增量。另外,我们观察到相同轴向的电感的非线性添加剂行为,即,由于部分体积引起的电感的变化不是添加剂。当颗粒径向通过线圈移动时,检测指数相同的信号。此外,在该方向上观察到电感的线性添加行为。增加磁化率对检测到的信号具有显着影响。然而,散热的敏感性相对较小,以保持超顺磁性。线圈电感不仅取决于磁性颗粒在其核心的体积或渗透率上,还取决于它们的分布在内部。

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