0.5 V Universal Filter and Quadrature Oscillator Based on Multiple-Input DDTA

This paper presents a universal voltage-mode filter and quadrature oscillator based on low-voltage multiple-input differential difference transconductance amplifier (MI-DDTA). Unlike the previous published DDTAs, that utilize the bulk-driven (BD) multiple-input MOS transistor technique (MI-MOST) in...

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Main Authors: Montree Kumngern, Fabian Khateb, Tomasz Kulej
Format: Article
Language:English
Published: IEEE 2023-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/10029358/
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author Montree Kumngern
Fabian Khateb
Tomasz Kulej
author_facet Montree Kumngern
Fabian Khateb
Tomasz Kulej
author_sort Montree Kumngern
collection DOAJ
description This paper presents a universal voltage-mode filter and quadrature oscillator based on low-voltage multiple-input differential difference transconductance amplifier (MI-DDTA). Unlike the previous published DDTAs, that utilize the bulk-driven (BD) multiple-input MOS transistor technique (MI-MOST) in the differential pair of the first stage only, the proposed DDTA, for the first time, utilize the BD MI-MOST in the second stage of the DDTA. This results in capability of providing more arithmetic operations without additional current branches or power dissipation. Hence, simplify the topology of the filter and oscillator applications, by decreasing the count of active blocks. The voltage-mode filter offers high-input and low-output impedances, and both non-inverting and inverting versions of five types of transfer functions, namely low-pass, high-pass, band-pass, band-stop, and all-pass characteristics. The oscillator offers three-phase of quadrature signals, and orthogonal control of the condition and frequency of oscillations. The circuit was designed in Cadence environment using 180 nm CMOS TSMC technology. The voltage supply is 0.5 V and the power consumption of the filter is 472 nW. The simulation results are in accordance with theory and confirm the performance of the proposed circuit.
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spelling doaj.art-df3b148323c04ccb8e4f74285f9b10052023-02-04T00:00:20ZengIEEEIEEE Access2169-35362023-01-01119957996610.1109/ACCESS.2023.3240520100293580.5 V Universal Filter and Quadrature Oscillator Based on Multiple-Input DDTAMontree Kumngern0https://orcid.org/0000-0002-1960-9081Fabian Khateb1https://orcid.org/0000-0002-9864-9830Tomasz Kulej2https://orcid.org/0000-0002-6315-9292Department of Telecommunications Engineering, School of Engineering, King Mongkut’s Institute of Technology Ladkrabang, Bangkok, ThailandDepartment of Microelectronics, Brno University of Technology, Brno, Czech RepublicDepartment of Electrical Engineering, Czestochowa University of Technology, Czestochowa, PolandThis paper presents a universal voltage-mode filter and quadrature oscillator based on low-voltage multiple-input differential difference transconductance amplifier (MI-DDTA). Unlike the previous published DDTAs, that utilize the bulk-driven (BD) multiple-input MOS transistor technique (MI-MOST) in the differential pair of the first stage only, the proposed DDTA, for the first time, utilize the BD MI-MOST in the second stage of the DDTA. This results in capability of providing more arithmetic operations without additional current branches or power dissipation. Hence, simplify the topology of the filter and oscillator applications, by decreasing the count of active blocks. The voltage-mode filter offers high-input and low-output impedances, and both non-inverting and inverting versions of five types of transfer functions, namely low-pass, high-pass, band-pass, band-stop, and all-pass characteristics. The oscillator offers three-phase of quadrature signals, and orthogonal control of the condition and frequency of oscillations. The circuit was designed in Cadence environment using 180 nm CMOS TSMC technology. The voltage supply is 0.5 V and the power consumption of the filter is 472 nW. The simulation results are in accordance with theory and confirm the performance of the proposed circuit.https://ieeexplore.ieee.org/document/10029358/Differential difference transconductance amplifiermultiple-input MOS transistor techniqueuniversal filterquadrature oscillator
spellingShingle Montree Kumngern
Fabian Khateb
Tomasz Kulej
0.5 V Universal Filter and Quadrature Oscillator Based on Multiple-Input DDTA
IEEE Access
Differential difference transconductance amplifier
multiple-input MOS transistor technique
universal filter
quadrature oscillator
title 0.5 V Universal Filter and Quadrature Oscillator Based on Multiple-Input DDTA
title_full 0.5 V Universal Filter and Quadrature Oscillator Based on Multiple-Input DDTA
title_fullStr 0.5 V Universal Filter and Quadrature Oscillator Based on Multiple-Input DDTA
title_full_unstemmed 0.5 V Universal Filter and Quadrature Oscillator Based on Multiple-Input DDTA
title_short 0.5 V Universal Filter and Quadrature Oscillator Based on Multiple-Input DDTA
title_sort 0 5 v universal filter and quadrature oscillator based on multiple input ddta
topic Differential difference transconductance amplifier
multiple-input MOS transistor technique
universal filter
quadrature oscillator
url https://ieeexplore.ieee.org/document/10029358/
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AT fabiankhateb 05vuniversalfilterandquadratureoscillatorbasedonmultipleinputddta
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