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用于离子选择性膜时空特性分析的局部离子成像平台。

A LoC Ion Imaging Platform for Spatio-Temporal Characterisation of Ion-Selective Membranes.

出版信息

IEEE Trans Biomed Circuits Syst. 2022 Aug;16(4):545-556. doi: 10.1109/TBCAS.2022.3186742. Epub 2022 Oct 12.

DOI:10.1109/TBCAS.2022.3186742
PMID:35763475
Abstract

In this paper, a complete Lab-on-Chip (LoC) ion imaging platform for analysing Ion-Selective Membranes (ISM) using CMOS ISFET arrays is presented. An array of 128 × 128 ISFET pixels is employed with each pixel featuring 4 transistors to bias the ISFET to a common drain amplifier. Column-level 2-step readout circuits are designed to compensate for array offset variations in a range of up to ±1 V. The chemical signal associated with a change in ionic concentration is stored and fed back to a programmable gain instrumentation amplifier for compensation and signal amplification through a global system feedback loop. This column-parallel signal pipeline also integrates an 8-bit single slope ADC and an 8-bit R-2R DAC to quantise the processed pixel output. Designed and fabricated in the TSMC 180 nm BCD process, the System-on-Chip (SoC) operates in real time with a maximum frame rate of 1000 fps, whilst occupying a silicon area of 2.3 mm × 4.5 mm. The readout platform features a high-speed digital system to perform system-level feedback compensation with a USB 3.0 interface for data streaming. With this platform we show the first reported analysis and characterisation of ISMs using an ISFETs array through capturing real-time high-speed spatio-temporal information at a resolution of 16 μm in 1000 fps, extracting time-response and sensitivity. This work paves the way of understanding the electrochemical response of ISMs, which are widely used in various biomedical applications.

摘要

本文提出了一种用于分析离子选择膜(ISM)的完整片上实验室(LoC)离子成像平台,该平台使用 CMOS ISFET 阵列。采用 128×128 的 ISFET 像素阵列,每个像素具有 4 个晶体管,将 ISFET 偏置到共源放大器。设计了列级 2 步读出电路,以补偿多达±1 V 的阵列偏移变化。与离子浓度变化相关的化学信号被存储并反馈到可编程增益仪表放大器,通过全局系统反馈回路进行补偿和信号放大。该列并行信号流水线还集成了 8 位单斜率 ADC 和 8 位 R-2R DAC,对处理后的像素输出进行量化。该系统在 TSMC 180nm BCD 工艺中设计和制造,实时运行,最大帧率为 1000 fps,占用硅面积为 2.3mm×4.5mm。该读出平台具有高速数字系统,通过 USB 3.0 接口执行系统级反馈补偿,用于数据流。通过该平台,我们展示了使用 ISFET 阵列对 ISMs 进行的首次实时高速时空信息的分析和表征,帧率为 1000 fps,分辨率为 16μm,提取了时间响应和灵敏度。这项工作为理解 ISMs 的电化学响应铺平了道路,ISMs 广泛应用于各种生物医学应用中。

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