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Related Concept Videos

Design Example: Capacitance Multiplier Circuit01:20

Design Example: Capacitance Multiplier Circuit

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In integrated circuit technology, a capacitance multiplier is often utilized to produce a larger capacitance value when a small physical capacitance falls short. This is achieved by a circuit that multiplies capacitance values by a factor of up to 1000, such that a 10-pF capacitor can replicate the performance of a 100-nF capacitor.
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MOS Capacitor01:25

MOS Capacitor

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A Metal-Oxide-Semiconductor (MOS) capacitor is a fundamental structure used extensively in semiconductor device technology, particularly in the fabrication of integrated circuits and MOSFETs (metal-oxide-semiconductor field-effect transistors). The MOS capacitor consists of three layers: a metal gate, a dielectric oxide, and a semiconductor substrate.
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Equivalent Capacitance01:19

Equivalent Capacitance

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From the study of resistive circuits, it is understood that employing a series-parallel combination serves as an effective strategy for simplifying circuits. Capacitors can be arranged within a circuit in one of two ways: a series configuration or a parallel configuration. The way these capacitors are connected to a battery will influence both the potential drop across each individual capacitor and the size of the charge that each capacitor can store. This is determined by the specific type of...
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Equivalent Capacitance01:19

Equivalent Capacitance

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Multiple capacitors can be connected in a circuit in series or parallel configuration. When the capacitor combination is connected to a battery, the potential drop across each capacitor and the magnitude of charge stored in the individual capacitor depends on the type of the connection. The capacitor combination is replaced by a single equivalent capacitor that stores the same amount of charge as the combination for a given potential difference.
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Capacitors and Capacitance01:18

Capacitors and Capacitance

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A device consisting of two electrical conductors that are separated by a distance and used to store electrical charges is called a capacitor. The space between the conductors is either a vacuum or an insulating material, called a dielectric. Capacitors have many applications, ranging from filtering static from radio reception to energy storage in heart defibrillators.
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Capacitors01:15

Capacitors

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Capacitors play a crucial role in car radios, where they filter and store frequencies to ensure clear signal reception. Essentially serving as energy storage devices, capacitors store energy within their electric field and are composed of two parallel conducting plates separated by a dielectric.
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Updated: Mar 9, 2026

Real-Time DC-dynamic Biasing Method for Switching Time Improvement in Severely Underdamped Fringing-field Electrostatic MEMS Actuators
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Programmable Low-Power Low-Noise Capacitance to Voltage Converter for MEMS Accelerometers.

Guillermo Royo1, Carlos Sánchez-Azqueta2, Cecilia Gimeno3

  • 1Group of Electronic Design-Aragón Institute of Engineering Research, Universidad de Zaragoza, 50009 Zaragoza, Spain. royo@unizar.es.

Sensors (Basel, Switzerland)
|January 3, 2017
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Summary

This study introduces a low-power capacitance-to-voltage converter (CVC) for microelectromechanical systems (MEMS) accelerometers. The novel design offers adjustable gain and bandwidth, enabling efficient capacitive sensing for various applications.

Keywords:
accelerometercapacitive sensingmicroelectromechanical systems (MEMS)synchronous demodulationtransimpedance amplifier

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Area of Science:

  • Electrical Engineering
  • Sensor Technology
  • Microelectromechanical Systems (MEMS)

Background:

  • Capacitive accelerometers are widely used in various sensing applications.
  • Existing capacitance-to-voltage converters (CVCs) often face limitations in terms of power consumption, gain control, and bandwidth programmability.
  • There is a need for efficient and versatile CVCs for low-cost, low-power capacitive sensor systems.

Purpose of the Study:

  • To present a novel capacitance-to-voltage converter (CVC) for microelectromechanical systems (MEMS) capacitive accelerometers.
  • To achieve high transimpedance gain control and a wide programmable bandwidth.
  • To design a low-cost, low-power CVC suitable for integrated sensor applications.

Main Methods:

  • The CVC was designed based on a fully-differential transimpedance amplifier (TIA).
  • The circuit was implemented using a standard 0.18-μm CMOS technology.
  • Key performance metrics, including transimpedance gain, bandwidth, power consumption, and input-referred noise, were evaluated.

Main Results:

  • The developed TIA-based CVC features 34-dB transimpedance gain control.
  • It offers a programmable bandwidth spanning over a decade, from 75 kHz to 1.2 MHz.
  • The CVC demonstrates a low power consumption of only 54 μW.
  • At maximum gain, the equivalent input noise is 42 fA/√Hz at 50 kHz, translating to 100 μg/√Hz.

Conclusions:

  • The presented CVC effectively addresses the need for versatile and efficient signal conditioning in MEMS capacitive accelerometers.
  • The design's low power consumption and programmable features make it suitable for cost-sensitive and battery-operated sensor systems.
  • This work contributes to the advancement of integrated MEMS sensor technology by providing a high-performance CVC.