分形电极在经颅直流电刺激中的效果:一个计算模型研究

Shirin Mahdavi, F. Towhidkhah, N. Fatouraee
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引用次数: 2

摘要

经颅直流电刺激(tDCS)作为一种快速发展的电治疗技术,促使研究者对初级保健方案的剂量进行合理化。该领域的一些重要方面涉及电极的尺寸、位置和形状的修饰。近年来,分形电极已显示出提高神经刺激效率的潜力。本研究的目的是通过数值方法来研究这种新引入的电极对tDCS的影响。基于核磁共振成像图像,建立了独立的高分辨率有限元人头模型。我们模拟了传统电极和分形电极在大脑中的感应电流密度。结果表明,分形电极的几何形状对电流密度的大小有影响。相同向内刺激下,分形电极的峰值电流密度比常规电极高1.3倍。分形可以被认为是一种有效的方法,可以提供更多的电流密度穿透人类大脑。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficacy of fractal electrodes in transcranial direct current stimulation: A computational modeling study
Fast-growing application of transcranial direct current stimulation (tDCS) as an electrotherapy technique has been motivated researchers to rationalize dosage of primary care protocol. Some important aspects in this field are pertained to modification of electrodes regarding size, position and shape of them. Recently, fractal electrodes have shown the potential to enhance neural stimulation efficiency. The purpose of current study was to address the efficacy of this newly introduced electrode on tDCS via numerical methods. An individual high resolution finite element human head model was created based on MR-scanning images. We simulated induced current density in the brain for conventional and fractal electrodes. The results demonstrate that geometry of fractal electrodes has an impact on the magnitude of current density. The peak current density for the same inward stimulus was higher (~1.3 times) for fractal electrodes in comparison with conventional type. Fractal shapes could be considered as an efficient way to provide more penetration of current density across the human brain.
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