Abstract

This article focuses on a proposed Switched-Capacitor Dual-Slope based CDC. Special attention is paid to the measurement setup using a real pressure sensor. Performance scaling potential as well as dead zones are pointed out and discussed. In depth knowledge of the physical sensor behavior is key to design an optimal readout circuit. While this is true for high-end applications, low-performance IoT (Internet of Things) sensors aim at moderate resolution with very low power consumption. This article also provides insights into basic MEMS (Micro-Electro-Mechanical-System) physics. Based on that, an ambient air pressure sensor model for SPICE (Simulation-Program-with-Integrated-Circuit-Emphasis) circuit simulators is presented. The converter concept was proven on silicon in a 0.13 m process using both a real pressure sensor and an on-chip dummy MEMS bridge. A 3.2-ms measurement results in 13-bit resolution while consuming 35 A from a 1.5-V supply occupying 0.148 mm2. A state-of-the-art comparison identifies potential room for improvements towards hybrid solutions, which is proposed in subsequent publications already.

Highlights

  • Pressure sensors that convert gases or liquid pressure into an electrical signal are widely used in several fields, such as automotive, consumer, medical and industrial

  • This article focuses on a proposed Switched-Capacitor Dual-Slope based Capacitance-to-Digital Converters (CDCs)

  • The converter concept was proven on silicon in a 0.13 μm process using both a real pressure sensor and an on-chip dummy MEMS bridge

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Summary

A Fully-Differential Switched-Capacitor Dual-Slope

Christopher Rogi 1, * , Cesare Buffa 1 , Niccolo De Milleri 1 and Richard Gaggl 1 and Enrique Prefasi 2. Infineon Technologies Austria AG, RF & Sensors, Siemensstr. Electronic Technology Department, Carlos III University of Madrid, 28911 Madrid, Spain

Introduction
Capacitive MEMS Physics
MEMS Modeling Approach
A Switched-Capacitor Noise-Shaping Dual-Slope direct CDC
Phase I
Phase II
INtegrator Output Voltage Scaling via CF and CDAC
Circuit Design
Measurement Setup Details
Main Measurement Results
Full Input Pressure Range Measurement
32 FFT Averages
Dead Zones
Performance Scaling Potential
Comparison to State of The Art
Conclusions and Dual-Slope CDC Outlook
Full Text
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