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《ANTIGONE:一种用于 ISFET 可穿戴汗液传感系统的可编程节能电流数字化仪》

ANTIGONE: A Programmable Energy-Efficient Current Digitizer for an ISFET Wearable Sweat Sensing System.

机构信息

École Polytechnique Fédérale de Lausanne (EPFL), CH-1015 Lausanne, Switzerland.

出版信息

Sensors (Basel). 2021 Mar 16;21(6):2074. doi: 10.3390/s21062074.

Abstract

This article describes the design and the characterization of the ANTIGONE (ANalog To dIGital cONvErter) ASIC (Application Specific Integrated Circuit) built in AMS 0.35 m technology for low dc-current sensing. This energy-efficient ASIC was specifically designed to interface with multiple Ion-Sensitive Field-Effect Transistors (ISFETs) and detect biomarkers like pH, Na+, K+ and Ca2+ in human sweat. The ISFET-ASIC system can allow real-time noninvasive and continuous health monitoring. The ANTIGONE ASIC architecture is based on the current-to-frequency converter through the charge balancing principle. The same front-end can digitize multiple currents produced by four sweat ISFET sensors in time multiplexing. The front-end demonstrates good linearity over a dynamic range that spans from 1 pA up to 500 nA. The consumed energy per conversion is less than 1 J. The chip is programmable and works in eight different modes of operation. The system uses a standard Serial Peripheral Interface (SPI) to configure, control and read the digitally converted sensor data. The chip is controlled by a portable device over Bluetooth Low Energy (BLE) through a Microcontroller Unit (MCU). The sweat sensing system is part of a bigger wearable platform that exploits the convergence of multiparameter biosensors and environmental sensors for personalized and preventive healthcare.

摘要

本文描述了一款应用于低直流电流检测的 ANTIGONE(模拟转数字转换器)ASIC(专用集成电路)的设计和特性。这款节能 ASIC 是专门为与多个离子敏场效应晶体管(ISFET)接口而设计的,可检测人体汗液中的生物标志物,如 pH 值、Na+、K+和 Ca2+。ISFET-ASIC 系统可实现实时、非侵入式和连续的健康监测。ANTIGONE ASIC 架构基于电流到频率转换器,通过电荷平衡原理实现数字化。同一个前端可以在时间复用模式下对四个汗液 ISFET 传感器产生的多个电流进行数字化处理。前端在 1pA 至 500nA 的动态范围内表现出良好的线性度。每次转换消耗的能量小于 1J。该芯片是可编程的,可工作在 8 种不同的操作模式下。该系统使用标准的串行外设接口(SPI)进行配置、控制和读取数字转换后的传感器数据。芯片通过微控制器单元(MCU)通过低能耗蓝牙(BLE)由便携设备进行控制。汗液感应系统是更大的可穿戴平台的一部分,该平台利用多参数生物传感器和环境传感器的融合,实现个性化和预防性医疗保健。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/da7b/8002162/c12b32c20743/sensors-21-02074-g001.jpg

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