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In small-signal analysis, a MOSFET transistor amplifier acts as a linear amplifier when operating in its saturation region. The gate-to-source voltage (VGS) of the MOSFET is the sum of the DC biasing voltage and the small time-varying input signal. This combination sets up the operating point and modulates the drain current (ID) that flows from the drain to the source. When a small AC signal is superimposed on the DC bias voltage at the gate, the instantaneous drain current comprises three...
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0.5 V Versatile Voltage- and Transconductance-Mode Analog Filter Using Differential Difference Transconductance

Tomasz Kulej1, Montree Kumngern2, Fabian Khateb3,4,5

  • 1Department of Electrical Engineering, Czestochowa University of Technology, 42-201 Czestochowa, Poland.

Sensors (Basel, Switzerland)
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PubMed
Summary

A novel resistor-less analog filter using three differential-difference transconductance amplifiers (DDTAs) offers versatile voltage-mode and transconductance-mode operations. This integrated circuit design achieves multiple filtering responses and electronic control, suitable for advanced analog filter applications.

Keywords:
analog circuitanalog filterdifferential different transconductance amplifiers (DDTA)oscillator

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Area of Science:

  • Analog electronics
  • Integrated circuit design
  • Filter theory

Background:

  • Traditional analog filters often rely on resistors, limiting miniaturization and integration.
  • Achieving both high-input and low-output impedance (for VM) and high-input and high-output impedance (for TM) in a single topology is challenging.
  • Existing filter designs may require circuit modifications to switch between voltage-mode and transconductance-mode operations.

Purpose of the Study:

  • To propose a new, versatile analog filter topology.
  • To demonstrate resistor-less implementation using DDTAs for integrated circuits.
  • To achieve both voltage-mode (VM) and transconductance-mode (TM) operations with desirable impedance characteristics in a single circuit.

Main Methods:

  • The proposed filter utilizes three differential-difference transconductance amplifiers (DDTAs) and two grounded capacitors.
  • The design avoids the use of resistors, facilitating integrated circuit implementation.
  • Simulations were performed using Cadence with 0.18 µm CMOS technology.

Main Results:

  • The filter topology provides high-input and low-output impedances for VM operation and high-input and high-output impedances for TM operation without modification.
  • A quadrature oscillator can be realized by adding a feedback loop.
  • The single topology supports five standard filtering responses: low-pass, high-pass, band-pass, band-stop, and all-pass.
  • Electronic control over natural frequency and oscillation conditions is achieved.
  • The circuit operates at a low supply voltage of 0.5 V.

Conclusions:

  • The proposed resistor-less analog filter offers a versatile and efficient solution for integrated circuit applications.
  • The design successfully integrates VM and TM operations with tunable filtering responses.
  • The circuit's low power consumption and high performance make it suitable for modern electronic systems.