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Design and Analysis of a Novel 24 GHz Up-Conversion Mixer with Improved Derivative Super-Position Linearizer Technique for 5G Applications

A 24 GHz high linear, high-gain up-conversion mixer is realized for fifth-generation (5G) applications in the 65 nm CMOS process. The mixer’s linearity is increased by applying an Improved Derivative Super-Position (I-DS) technique cascaded between the mixer’s transconductance and switching stage. T...

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Autores principales: Siddique, Abrar, Delwar, Tahesin Samira, Behera, Prangyadarsini, Biswal, Manas Ranjan, Haider, Amir, Ryu, Jee-Youl
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8471453/
https://www.ncbi.nlm.nih.gov/pubmed/34577325
http://dx.doi.org/10.3390/s21186118
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author Siddique, Abrar
Delwar, Tahesin Samira
Behera, Prangyadarsini
Biswal, Manas Ranjan
Haider, Amir
Ryu, Jee-Youl
author_facet Siddique, Abrar
Delwar, Tahesin Samira
Behera, Prangyadarsini
Biswal, Manas Ranjan
Haider, Amir
Ryu, Jee-Youl
author_sort Siddique, Abrar
collection PubMed
description A 24 GHz high linear, high-gain up-conversion mixer is realized for fifth-generation (5G) applications in the 65 nm CMOS process. The mixer’s linearity is increased by applying an Improved Derivative Super-Position (I-DS) technique cascaded between the mixer’s transconductance and switching stage. The high gain and stability of amplifiers in the transconductance stage of the mixer are achieved using novel tunable capacitive cross-coupled common source (TCC-CS) transistors. Using the I-DS, the third-order non-linear coefficient of current is closed to zero, enhancing the linearity. Additionally, a TCC-CS, which is realized by varactors, neutralizes the gate-to-drain parasitic capacitance (C(gd)) of transistors in the transconductance stage of the mixer and contributes to the improvement of the gain and stability of the mixer. The measured 1 dB compression point OP(1)dB of the designed mixer is 4.1 dBm and IP(1)dB is 0.67 dBm at 24 GHz. The conversion gain of 4.1 dB at 24 GHz and 3.2 ± 0.9 dB, from 20 to 30 GHz is achieved in the designed mixer. Furthermore, a noise figure of 3.8 dB is noted at 24 GHz. The power consumption of the mixer is 4.9 mW at 1.2 V, while the chip area of the designed mixer is 0.4 mm [Formula: see text].
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spelling pubmed-84714532021-09-28 Design and Analysis of a Novel 24 GHz Up-Conversion Mixer with Improved Derivative Super-Position Linearizer Technique for 5G Applications Siddique, Abrar Delwar, Tahesin Samira Behera, Prangyadarsini Biswal, Manas Ranjan Haider, Amir Ryu, Jee-Youl Sensors (Basel) Article A 24 GHz high linear, high-gain up-conversion mixer is realized for fifth-generation (5G) applications in the 65 nm CMOS process. The mixer’s linearity is increased by applying an Improved Derivative Super-Position (I-DS) technique cascaded between the mixer’s transconductance and switching stage. The high gain and stability of amplifiers in the transconductance stage of the mixer are achieved using novel tunable capacitive cross-coupled common source (TCC-CS) transistors. Using the I-DS, the third-order non-linear coefficient of current is closed to zero, enhancing the linearity. Additionally, a TCC-CS, which is realized by varactors, neutralizes the gate-to-drain parasitic capacitance (C(gd)) of transistors in the transconductance stage of the mixer and contributes to the improvement of the gain and stability of the mixer. The measured 1 dB compression point OP(1)dB of the designed mixer is 4.1 dBm and IP(1)dB is 0.67 dBm at 24 GHz. The conversion gain of 4.1 dB at 24 GHz and 3.2 ± 0.9 dB, from 20 to 30 GHz is achieved in the designed mixer. Furthermore, a noise figure of 3.8 dB is noted at 24 GHz. The power consumption of the mixer is 4.9 mW at 1.2 V, while the chip area of the designed mixer is 0.4 mm [Formula: see text]. MDPI 2021-09-12 /pmc/articles/PMC8471453/ /pubmed/34577325 http://dx.doi.org/10.3390/s21186118 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Siddique, Abrar
Delwar, Tahesin Samira
Behera, Prangyadarsini
Biswal, Manas Ranjan
Haider, Amir
Ryu, Jee-Youl
Design and Analysis of a Novel 24 GHz Up-Conversion Mixer with Improved Derivative Super-Position Linearizer Technique for 5G Applications
title Design and Analysis of a Novel 24 GHz Up-Conversion Mixer with Improved Derivative Super-Position Linearizer Technique for 5G Applications
title_full Design and Analysis of a Novel 24 GHz Up-Conversion Mixer with Improved Derivative Super-Position Linearizer Technique for 5G Applications
title_fullStr Design and Analysis of a Novel 24 GHz Up-Conversion Mixer with Improved Derivative Super-Position Linearizer Technique for 5G Applications
title_full_unstemmed Design and Analysis of a Novel 24 GHz Up-Conversion Mixer with Improved Derivative Super-Position Linearizer Technique for 5G Applications
title_short Design and Analysis of a Novel 24 GHz Up-Conversion Mixer with Improved Derivative Super-Position Linearizer Technique for 5G Applications
title_sort design and analysis of a novel 24 ghz up-conversion mixer with improved derivative super-position linearizer technique for 5g applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8471453/
https://www.ncbi.nlm.nih.gov/pubmed/34577325
http://dx.doi.org/10.3390/s21186118
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