An energy efficient inverter based readout circuit for capacitive sensor

T. Nguyen, P. Häfliger
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引用次数: 13

Abstract

This paper presents a high energy efficient, parasitic free and low complex readout integrated circuit for capacitive sensors. A very low power consumption is achieved by replacing a power hungry operation amplifier by a subthreshold inverter instead in a switched capacitor amplifier(SC-amp) and reducing the supply voltage of all digital circuits in the system. A fast respond finite gain compensation method is utilized to reduce the gain error of the SC-amp and increase the energy efficiency of the readout circuit. A two-step auto calibration is applied to eliminate the offset from nonideal effects of the SC-amp and comparator delay. The readout system is implemented and simulated in TSMC 90 nm CMOS technology. With supply voltage of 1 V, simulation shows that the circuit can achieve 10.4 bit resolution while consuming only 3 μW during 640 μs conversion time. The digital output code has little sensitivity to temperature variation.
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一种基于逆变器的电容式传感器读出电路
提出了一种高能效、无寄生、低复杂读出的电容式传感器集成电路。通过在开关电容放大器(SC-amp)中用亚阈值逆变器取代耗电运算放大器,并降低系统中所有数字电路的供电电压,实现了非常低的功耗。采用快速响应的有限增益补偿方法,减小了sc放大器的增益误差,提高了读出电路的能量效率。两步自动校准应用于消除sc放大器和比较器延迟的非理想影响的偏移。采用台积电90nm CMOS技术对读出系统进行了仿真。仿真结果表明,在电源电压为1 V时,电路在640 μs转换时间内,功耗仅为3 μW,可实现10.4 bit的分辨率。数字输出码对温度变化的敏感性很小。
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