2002•Unpublished venueRequires access

A robust high-speed and low-power CMOS current comparator circuit

Lu Chen, Bingxue Shi, Chun Lu

Open publisher page 24 citations

Abstract

As an important component of a current-mode signal processing circuit, a new continuous-time CMOS current comparator with high speed and low power is proposed. It comprises one CMOS complementary amplifier with a feedback MOS resistor, two resistive-load amplifiers and two CMOS inverters. Its features include short response delay, low power consumption and small area. Because of the absence of bias currents and voltages, this circuit is also robust to process deviations. Transient HSPICE simulation results with a 1.2 /spl mu/m CMOS process verifies its superiority of speed/power ratio over other existing high-performance CMOS current comparators.

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What this paper is about

As an important component of a current-mode signal processing circuit, a new continuous-time CMOS current comparator with high speed and low power is proposed. It comprises one CMOS complementary amplifier with a feedback MOS resistor, two resistive-load amplifiers and two CMOS inverters. Its features include short response delay, low power consumption and small area. Because of the absence of bias currents and voltages, this circuit is also robust to process deviations. Transient HSPICE simulation results with a 1.2 /spl mu/m CMOS process verifies its superiority of speed/power ratio over other existing high-performance CMOS current comparators.

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OpenAlex reports 24 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

As an important component of a current-mode signal processing circuit, a new continuous-time CMOS current comparator with high speed and low power is proposed. It comprises one CMOS complementary amplifier with a feedback MOS resistor, two resistive-load amplifiers and two CMOS inverters. Its features include short response delay, low power consumption and small area. Because of the absence of bias currents and voltages, this circuit is also robust to process deviations. Transient HSPICE simulation results with a 1.2 /spl mu/m CMOS process verifies its superiority of speed/power ratio over other existing high-performance CMOS current comparators.

Key concepts: Comparator, CMOS, Resistor, Electrical engineering, Electronic engineering, Amplifier, Voltage, Computer science

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