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A CMOS Pixelated Nanocapacitor Biosensor Platform for High-Frequency Impedance Spectroscopy and Imaging

机译:用于高频阻抗光谱和成像的CMOS像素化纳米电容器生物传感器平台

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We describe the realization of a fully electronic label-free temperature-controlled biosensing platform aimed to overcome the Debye screening limit over a wide range of electrolyte salt concentrations. It is based on an improved version of a 90-nm CMOS-integrated circuit featuring a nanocapacitor array, read-out and A/D conversion circuitry, and a field programmable gate array (FPGA)-based interface board with NIOS II soft processor. We describe chip's processing, mounting, microfluidics, temperature control system, as well as the calibration and compensation procedures to reduce systematic errors, which altogether make up a complete quantitative sensor platform. Capacitance spectra recorded up to 70 MHz are shown and successfully compared to predictions by finite element method (FEM) numerical simulations in the Poisson-Drift-Diffusion formalism. They demonstrate the ability of the chip to reach high upper frequency of operation, thus overcoming the low-frequency Debye screening limit at nearly physiological salt concentrations in the electrolyte, and allowing for detection of events occurring beyond the extent of the electrical double layer. Furthermore, calibrated multifrequency measurements enable quantitative recording of capacitance spectra, whose features can reveal new properties of the analytes. The scalability of the electrode dimensions, interelectrode pitch, and size of the array make this sensing approach of quite general applicability, even in a non-bio context (e.g., gas sensing).
机译:我们描述了一个完全电子化的无标签温控生物传感平台的实现,该平台旨在克服广泛的电解质盐浓度范围内的德拜筛选限制。它基于具有纳米电容器阵列,读出和A / D转换电路以及带有NIOS II软处理器的基于现场可编程门阵列(FPGA)的接口板的90-nm CMOS集成电路的改进版本。我们描述了芯片的处理,安装,微流体,温度控制系统,以及减少系统误差的校准和补偿程序,它们共同构成了一个完整的定量传感器平台。显示了记录的高达70 MHz的电容频谱,并已成功将其与Poisson-Drift-Diffusion形式主义中的有限元方法(FEM)数值模拟进行了比较。他们证明了芯片能够达到较高的高工作频率的能力,从而克服了电解质中几乎生理盐浓度下的低频Debye筛选极限,并允许检测超出双电层范围的事件。此外,经过校准的多频测量可以定量记录电容谱,其特征可以揭示分析物的新特性。电极尺寸,电极间间距和阵列尺寸的可缩放性使得该感测方法具有相当普遍的适用性,即使在非生物环境中(例如,气体感测)。

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