一种利用多通道密集阵列系统合成复杂电场图的新方法,在低强度无创神经调节中的应用。

IF 1.8 3区 生物学 Q3 BIOLOGY
Matthew C. Smith PhD, Daniel F. Sievenpiper PhD
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引用次数: 0

摘要

多通道线圈阵列系统提供精确的时空电子转向和电场和磁场的图案,而不需要线圈或磁铁的物理运动。这种能力可能有益于广泛的生物磁学应用,如低强度非侵入性神经调节或磁性药物输送。在这方面,这项工作的目标是开发一种独特的合成方法,该方法由多通道密集阵列系统实现,产生以前文献中未报道的复杂电流模式分布。仿真和实验结果验证了该方法可以有效地在单个和多个位置形成高度弯曲或不规则(如锯齿形)的图案。该合成方法由三个主要组分组成;一个像素单元(图案形成的基本单位),一个模板阵列(“虚拟阵列”:将线圈电流权重传播到“物理”密集阵列的代码)和一个六边形坐标系。低强度或低场磁刺激被认为是未来可能受益于这项工作的潜在应用,因此被用作框架研究的一个例子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A new synthesis method for complex electric field patterning using a multichannel dense array system with applications in low-intensity noninvasive neuromodulation

Multichannel coil array systems offer precise spatiotemporal electronic steering and patterning of electric and magnetic fields without the physical movement of coils or magnets. This capability could potentially benefit a wide range of biomagnetic applications such as low-intensity noninvasive neuromodulation or magnetic drug delivery. In this regard, the objective of this work is to develop a unique synthesis method, that enabled by a multichannel dense array system, generates complex current pattern distributions not previously reported in the literature. Simulations and experimental results verify that highly curved or irregular (e.g., zig–zag) patterns at singular and multiple sites can be efficiently formed using this method. The synthesis method is composed of three primary components; a pixel cell (basic unit of pattern formation), a template array (“virtual array”: code that disseminates the coil current weights to the “physical” dense array), and a hexagonal coordinate system. Low-intensity or low-field magnetic stimulation is identified as a potential application that could benefit from this work in the future and as such is used as an example to frame the research.

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来源期刊
Bioelectromagnetics
Bioelectromagnetics 生物-生物物理
CiteScore
4.60
自引率
0.00%
发文量
44
审稿时长
6-12 weeks
期刊介绍: Bioelectromagnetics is published by Wiley-Liss, Inc., for the Bioelectromagnetics Society and is the official journal of the Bioelectromagnetics Society and the European Bioelectromagnetics Association. It is a peer-reviewed, internationally circulated scientific journal that specializes in reporting original data on biological effects and applications of electromagnetic fields that range in frequency from zero hertz (static fields) to the terahertz undulations and visible light. Both experimental and clinical data are of interest to the journal''s readers as are theoretical papers or reviews that offer novel insights into or criticism of contemporary concepts and theories of field-body interactions. The Bioelectromagnetics Society, which sponsors the journal, also welcomes experimental or clinical papers on the domains of sonic and ultrasonic radiation.
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