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首页> 外文期刊>Biomedical Microdevices >Design considerations in the development and application of microdisc electrode arrays (MDEAs) for implantable biosensors
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Design considerations in the development and application of microdisc electrode arrays (MDEAs) for implantable biosensors

机译:开发和应用可植入生物传感器的微盘电极阵列(MDEA)的设计注意事项

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摘要

The use of microlithographically fabricated Microdisc Electrode Arrays (MDEAs) in the development of implantable voltammetric biosensors necessitates design criteria that balances the overall footprint of the device with the advantages to be derived from large separation distances between non-interacting microdisc elements. Using the dynamic electroanalytical techniques of Multiple Scan Rate Cyclic Voltammetry (MSRCV) experiments with finite element simulations and Electrochemical Impedance Spec-troscopy with equivalent circuit modeling, three unique MDEA designs; MDEA 050 (r=25 μm, 5,184 discs), MDEA 100 (r=50 μm, 1,296 discs) and MDEA 250 (r= 125 μm, 207 discs) of constant critical dimensions (center-to-center d/r=4) and area (A=0.1 cm~2) were studied in 1.0 mM ferrocene monocarboxylic acid (FcCO_2H) solution (in 0.1 M Tris/0.1 M KC1 buffer, pH=7.2). The critical disc-to-disc spacing (d/r) required to archive 67% of maximal current response was defined as optimal. Based on the predictive model, new MDEA designs; MDEA 001 (r=0.5 μm, 127,324 discs), MDEA 002.5 (r=1.25 μm, 20,372 discs), MDEA 005 (r=2.5 μm, 5,093 discs), MDEArn010 (r=5 μm, 1,273 discs), MDEA 015 (r=7.5 μm, 566 discs), MDEA 020 (r= 10 μm, 318 discs) were simulated at 10 and 100 mV/s. The final disc count of each MDEA was dictated by the need to maintain a comparable electroactive area between the MDEAs, which was chosen to be 0.001 cm~2, which in turn was dictated by the need to generate sufficient electrochemical current to be comfortably measured by common electrochemical detectors.
机译:在可植入伏安生物传感器的开发中,使用微光刻制造的微盘电极阵列(MDEA)要求设计标准必须兼顾设备的总体尺寸和非相互作用微盘元件之间的大间距而带来的优势。使用具有有限元模拟的多次扫描速率循环伏安(MSRCV)实验的动态电分析技术和具有等效电路建模的电化学阻抗谱技术,三种独特的MDEA设计;具有恒定临界尺寸(中心到中心d / r = 4)的MDEA 050(r = 25μm,5,184片),MDEA 100(r = 50μm,1,296片)和MDEA 250(r = 125μm,207片) )和面积(A = 0.1 cm〜2)在1.0 mM二茂铁一元羧酸(FcCO_2H)溶液(在0.1 M Tris / 0.1 M KCl缓冲液中,pH = 7.2)中进行了研究。存档67%的最大电流响应所需的磁盘间临界距离(d / r)被定义为最佳。基于预测模型,新的MDEA设计; MDEA 001(r = 0.5μm,127,324片),MDEA 002.5(r = 1.25μm,20,372片),MDEA 005(r = 2.5μm,5,093片),MDEArn010(r = 5μm,1,273片),MDEA 015( r = 7.5μm,566片),MDEA 020(r = 10μm,318片)以10和100 mV / s进行模拟。每个MDEA的最终盘数取决于保持MDEA之间可比较的电活性区域的需要,该区域应选择为0.001 cm〜2,而这又取决于需要产生足够的电化学电流来舒适地测量。普通的电化学探测器。

著录项

  • 来源
    《Biomedical Microdevices》 |2009年第3期|701-710|共10页
  • 作者单位

    Center for Bioelectronics, Biosensors and Biochips (C3B), Clemson University, 100 Technology Drive, Anderson, SC 29625, USA;

    Center for Bioelectronics, Biosensors and Biochips (C3B), Clemson University, 100 Technology Drive, Anderson, SC 29625, USA Department of Chemical and Biomolecular Engineering, Clemson University, Clemson, SC 29634, USA Department of Bioengineering, Clemson University, Clemson, SC 29634, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    ultramicroelectrodes; microelectrode arrays; voltammetry; impedance; biosensors; simulation;

    机译:超微电极微电极阵列;伏安法阻抗;生物传感器模拟;

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