Title :
A Low-Power Resistance-to-Frequency Converter Circuit With Wide Frequency Range
Author :
Kuan Chuang Koay ; Pak Kwong Chan
Author_Institution :
Sch. of Electr. & Electron. Eng., Nanyang Technol. Univ., Singapore, Singapore
Abstract :
A 65-nm CMOS front-end relaxation oscillator-based interface circuit for resistive bridge sensors is presented. It converts the sensor ac input currents into the sawtooth frequencies through the use of the proposed direct current-sensing grounded integrator topology without resorting to any current mirror(s) for coupling or signal processing in current-mode circuit design. Validated by three test setups in experiments, the proposed work shows a sensitivity of 41.5 Hz/nA dedicated to the wide output frequency ranging from 1.3 kHz to 2.489 MHz in a current-to-frequency converter, a sensitivity of 44.43 Hz/(μΩ/Ω) basing on a center frequency of 1.177 MHz in a half-bridge sensing interface and the quarterbridge temperature sensing interface using a commercial resistance temperature detector. In comparison with the prior-art works, it has demonstrated the best noise-energy figure-ofmerit and comparable linearity in the performance metrics even realized in the environment of nanometer CMOS technology. The sensor interface dissipates only 168 μW at a 1.2 V single supply. Therefore, it is very suitable for portable applications.
Keywords :
CMOS integrated circuits; current mirrors; current-mode circuits; frequency convertors; integrating circuits; low-power electronics; relaxation oscillators; CMOS front-end relaxation oscillator based interface circuit; commercial resistance temperature detector; current mirror; current-mode circuit design; direct current-sensing grounded integrator topology; frequency 1.3 kHz to 2.489 MHz; half-bridge sensing interface; low-power resistance-to-frequency converter circuit; nanometer CMOS technology; noise-energy figure-of-merit; power 168 muW; quarterbridge temperature sensing interface; resistive bridge sensors; sawtooth frequencies; sensor ac input currents; sensor interface; signal processing; size 65 nm; voltage 1.2 V; CMOS technology; Current-mode circuits; Frequency conversion; Low-power electronics; Temperature sensors; Transistors; Converter; current-to-frequency converter; low-power current-mode circuit; piezoresistive bridge sensor interface; relaxation oscillator; resistive-to-frequency transducer; temperature sensor; temperature sensor.;
Journal_Title :
Instrumentation and Measurement, IEEE Transactions on
DOI :
10.1109/TIM.2015.2444256