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首页> 外文期刊>Journal of Low Power Electronics >A 1.3-μW, 0.6-μm CMOS Current-Frequency Analog-Digital Converter for Implantable Blood-Glucose Monitors
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A 1.3-μW, 0.6-μm CMOS Current-Frequency Analog-Digital Converter for Implantable Blood-Glucose Monitors

机译:用于植入式血糖监测器的1.3μW,0.6μmCMOS电流模数转换器

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摘要

Blood-glucose monitors, like many biomedical implants, must operate autonomously, integrate into small spaces, and remain inconspicuous to the body. The problem is that, while including a battery large enough to sustain a system through its entire life impedes integration, under-sizing its energy reservoir to fit into a miniaturized platform shortens operational life. Fortunately, harvesting energy saves space because the environment (not the device) stores the energy a system requires. Harvesters, however, generate little power per unit volume so implantable sensors must operate under stringent power constraints. For this reason, this paper presents a 1.3-μW, 0.6-μm CMOS current-frequency (I-F) analog-digital converter (ADC). The differential, hysteretic-based ADC proposed uses nA-range input currents to set and compare voltage oscillations against a self-produced reference to resolve the input level an amperometric glucose sensor generates. The prototyped ADC ultimately draws 1.1 μA from a 1.2-V supply to resolve 0-32 nA with 4.25 bits of accuracy at a sampling rate of 225 Hz, which relatively simple and well-understood circuit and layout modifications can improve accuracy to over five bits.
机译:像许多生物医学植入物一样,血糖监测仪必须能够自主操作,整合到狭小的空间中,并且对人体不可见。问题在于,尽管包含足够大的电池以在整个使用寿命内维持系统运行会妨碍集成,但其储能器尺寸过小而无法安装到小型平台中,则会缩短使用寿命。幸运的是,收集能量可以节省空间,因为环境(而非设备)存储了系统所需的能量。但是,收割机每单位体积产生的功率很小,因此植入式传感器必须在严格的功率约束下运行。因此,本文提出了一种1.3μW,0.6μmCMOS电流频率(I-F)模数转换器(ADC)。提出的基于迟滞的差分ADC使用nA范围的输入电流来设置电压振荡,并将其与自行产生的基准进行比较,以解决电流型葡萄糖传感器产生的输入电平。原型ADC最终从1.2V电源汲取1.1μA电流,以225Hz的采样率以4.25位的精度解析0-32nA的电流,相对简单且易于理解的电路和布局修改可以将精度提高到5位以上。

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