首页> 外文会议>V Latin American Congress on Biomedical Engineering >Distribucion de la Densidad de Corriente e Impedancia de Materiales Alternativos en Microelectrodos Mediante el analisis de Elemento Finito
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Distribucion de la Densidad de Corriente e Impedancia de Materiales Alternativos en Microelectrodos Mediante el analisis de Elemento Finito

机译:通过有限元分析分布微电极中替代材料的电流密度和阻抗

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The innovations in the field of microelectrodes for biological applications have been significant advances in fabrication of the same for the recording and stimulus the excitable tissue (skin, muscle, neurons), for invasive or noninvasive methods, that help in the control of the motor movement, formation of the memory, rehabilitation and the monitoring of the neuronal activity. In particular these microelectrodes have been fabricated on a variety of substrates such as; silicon, metals and recently polymers, which must fulfill certain specifications of biocompatibility like, electrical, geometric and chemical. That way in this work studies the case of the current density distribution generated and impedance into finite element of alternative materials for microelectrode implementation. Examines the effects that the microelectrode electrolyte interface, of geometries of the microelectrodes submerged in physiological saline, as well as the electrical impedance, which is critical in the recording and neuronal stimulation. These effects will be examined by finite element method of through ANSYS~R. The results obtained by uniform electric fields of variable frequency, will give to the information of the behavior of the current density distribution generated and the electrical impedance in the microelectrode electrolyte interface. In the future this information will serve for the implementation of a recording system of the neuronal activity.
机译:在微电极生物应用领域的创新一直在同为记录和刺激的兴奋组织(皮肤,肌肉,神经元),浸润性或无创方法制造显著的进步,在电机运动控制是帮助中,在形成存储器,恢复和神经元活动的监测。特别是,这些微电极已经制造在各种基底上,例如的;硅,金属和最近聚合物,其必须满足像,电气,几何和化学生物相容性的某些规格。在这种工作方式研究中产生的电流密度分布与阻抗成用于微电极执行替代材料有限元件的情况下。检查效果是微电极电解质界面,在生理食盐水中浸没微电极的几何形状,以及电阻抗,这是在记录和神经刺激临界的。这些效果将通过ANSYS〜的R有限元法来检查。通过可变频率的均匀电场中获得的结果,将给予在微电极电解质界面处产生的电流密度分布和电阻抗的行为的信息。将来这些信息将成为对神经元活动的记录系统的实施。

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