Low Impedance Electrodes for Neural Stimulation
Low Impedance Electrodes for Neural Stimulation
批准号:
7354059
负责人:
Warren M. Grill
金额:
$20.48万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-06-01 至 2011-05-31
关键词:
AffectAreaArtificial cardiac pacemakerCellsChargeChronicClassComplicationConsumptionCorrosionDataDeep Brain StimulationDefibrillatorsDevelopmentDevicesElectric StimulationElectrodesElementsFigs - dietaryFoundationsImplantIn VitroInjection of therapeutic agentInjuryIridiumLeadLifeMeasurementMeasuresModelingNervous system structureNeuronsNumbersOperative Surgical ProceduresOutcomeOutcome StudyPacemakersPainPatternPerformancePhysiologic pulsePlacementPlatinumProcessPulse takingRateRiskSafetySpatial DistributionSpinal CordStimulusSurfaceTechnologyTestingTimeTissuesWorkbasebiomaterial compatibilityclinical applicationcostdeep brain stimulatordensitydesignelectric impedanceimplantable deviceimprovedin vivonervous system disorderneural stimulationnovelprototyperelating to nervous systemtrend
中文摘要
描述(由申请人提供):本项目旨在评价新型低阻抗刺激电极的技术可行性。 植入刺激器的功耗取决于电极-组织界面的阻抗。 功耗需要更大的植入式包装来容纳适当的电池,并且有限的电池寿命需要手术更换器械。 电极阻抗的降低将降低功耗,从而延长电池寿命和/或减小植入物包装。 我们将开发和评估新的高周长电极,旨在利用电极表面上电流密度的不均匀分布。 具有增加的周长的电极旨在增强“边缘效应”;电极表面上的电流密度朝向电极的周长更高,并且预期更显著的边缘效应将降低电极阻抗。 我们将在三个领域评估具有增加的周长的电极的性能。 首先,我们将对设计用于增加电极周长的一系列几何形状的阻抗进行体外测量。 这些数据将用于检验增加电极周长会降低电极阻抗的假设,并为后续电极设计提供信息。 其次,电极几何形状可以影响周围组织中产生的神经兴奋模式,我们将量化由高周长电极几何形状产生的神经元兴奋模式,并将其与传统电极产生的模式进行比较。 第三,电极几何形状可以影响电极表面上的电流密度的空间分布,这是刺激诱导的神经损伤和电极腐蚀的重要因素。 我们将对电极腐蚀进行体外脉冲测试,并量化周长增加对电极表面电流密度大小和分布的影响,以评估导致组织损伤的倾向。 这些研究的结果将是对新型低阻抗刺激电极技术可行性的全面分析和体外评估,并将为后续电极安全性和有效性的长期体内测试提供基础。 该项目的目的是设计和分析更有效的电极,用于神经系统的电刺激,以治疗神经系统疾病或损伤。 这些电极将增加电池供电的植入式电刺激器的寿命。 这将降低由于电池耗尽而与植入刺激器的手术更换相关的风险和成本。
英文摘要
DESCRIPTION (provided by applicant): The objective of this project is to evaluate the technical feasibility of novel low impedance stimulating electrodes. The power consumption of implanted stimulators is dependent on the impedance of the electrode- tissue interface. Power consumption requires larger implanted packages to accommodate appropriate batteries, and finite battery lifetimes require surgical replacement of devices. Reductions in electrode impedance will reduce power consumption leading to prolonged battery life and/or smaller implant packages. We will develop and evaluate novel high-perimeter electrodes designed to exploit the non-uniform distribution of current density on the electrode surface. Electrodes with increased perimeter are intended to enhance the "edge effect"; the current density on the electrode surface is higher toward the perimeter of the electrode, and a more pronounced edge effect is expected to lower the electrode impedance. We will evaluate the performance of electrodes with an increased perimeter in three domains. First, we will make in vitro measurements of the impedance of across a spectrum of geometries designed in increase the electrode perimeter. These data will be used to test the hypothesis that increasing the electrode perimeter decreases electrode impedance and to inform subsequent electrode designs. Second, the electrode geometry can affect the pattern of neural excitation generated in the surrounding tissue, and we will quantify the patterns of neuronal excitation generated by high-perimeter electrode geometries and compare these to patterns generated by conventional electrodes. Third, the electrode geometry can affect the spatial distribution of current density over the electrode surface, an important factor in stimulation induced neural damage and electrode corrosion. We will conduct in vitro pulse testing of electrode corrosion, and quantify the effects of increasing the perimeter on the magnitude and distribution of current density across the electrode surface to assess the propensity to cause tissue damage. The outcome of these studies will be a comprehensive analytical and in vitro assessment of the technical feasibility of a new class of low impedance stimulating electrodes, and will provide the foundation for subsequent chronic in vivo testing of electrode safety and efficacy. The objective of this project is to design and analyze more efficient electrodes for use in electrical stimulation of the nervous system to treat neurological disease or injury. These electrodes will increase the lifetime of battery-powered implantable electrical stimulators. This will reduce the risks and costs associated with surgical replacement of implanted stimulators due to depletion of the batteries.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
Analysis of high-perimeter planar electrodes for efficient neural stimulation.
分析高周长平面电极以进行有效的神经刺激。
DOI:
10.3389/neuro.16.015.2009
发表时间:
2009
期刊:
Frontiers in neuroengineering
影响因子:
--
作者:
[Wei,XuefengF, Grill,WarrenM]
通讯作者:
Grill,WarrenM
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