Low Noise Figure 2.4 GHz Down Conversion CMOS Mixer for Wireless Sensor Network Application

This work proposed a low noise figure 2.4 GHz down-conversion CMOS mixer for wireless sensor network (WSN) application using 0.13-μm Silterra technology. The proposed down-conversion mixer converts a high radio frequency (RF) signal from 2.4 GHz to an intermediate frequency (IF) of 100 MHz thro...

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Main Authors: Murad, S.A.Z., Sapawi, R.
Format: Article
Language:English
Published: IEEE 2017
Subjects:
Online Access:http://ir.unimas.my/id/eprint/15487/
http://ir.unimas.my/id/eprint/15487/1/Low%20noise%20figure%202.4%20GHz%20down%20conversion%20CMOS%20%28abstract%29.pdf
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author Murad, S.A.Z.
Sapawi, R.
author_facet Murad, S.A.Z.
Sapawi, R.
author_sort Murad, S.A.Z.
building UNIMAS Institutional Repository
collection Online Access
description This work proposed a low noise figure 2.4 GHz down-conversion CMOS mixer for wireless sensor network (WSN) application using 0.13-μm Silterra technology. The proposed down-conversion mixer converts a high radio frequency (RF) signal from 2.4 GHz to an intermediate frequency (IF) of 100 MHz through the use of a local oscillator signal (LO) of 2.3 GHz. The proposed mixer employs a double balance Gilbert-cell topology with integrated input matching at the input stage and a low pass filter at the IF stage. The simulation results indicate that the proposed mixer obtains lower noise figure (NF) of 5.21 dB with an input third-order intercept point (IIP3) of 0 dB. Furthermore, the conversion gain (CG) of 8.6 dB is achieved
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institution Universiti Malaysia Sarawak
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spelling unimas-154872017-05-02T04:17:31Z http://ir.unimas.my/id/eprint/15487/ Low Noise Figure 2.4 GHz Down Conversion CMOS Mixer for Wireless Sensor Network Application Murad, S.A.Z. Sapawi, R. T Technology (General) This work proposed a low noise figure 2.4 GHz down-conversion CMOS mixer for wireless sensor network (WSN) application using 0.13-μm Silterra technology. The proposed down-conversion mixer converts a high radio frequency (RF) signal from 2.4 GHz to an intermediate frequency (IF) of 100 MHz through the use of a local oscillator signal (LO) of 2.3 GHz. The proposed mixer employs a double balance Gilbert-cell topology with integrated input matching at the input stage and a low pass filter at the IF stage. The simulation results indicate that the proposed mixer obtains lower noise figure (NF) of 5.21 dB with an input third-order intercept point (IIP3) of 0 dB. Furthermore, the conversion gain (CG) of 8.6 dB is achieved IEEE 2017 Article PeerReviewed text en http://ir.unimas.my/id/eprint/15487/1/Low%20noise%20figure%202.4%20GHz%20down%20conversion%20CMOS%20%28abstract%29.pdf Murad, S.A.Z. and Sapawi, R. (2017) Low Noise Figure 2.4 GHz Down Conversion CMOS Mixer for Wireless Sensor Network Application. Proceedings - 14th IEEE Student Conference on Research and Development: Advancing Technology for Humanity, SCOReD 2016. ISSN ISBN: 978-150902947-1 http://ieeexplore.ieee.org/document/7810032/ DOI: 10.1109/SCORED.2016.7810032
spellingShingle T Technology (General)
Murad, S.A.Z.
Sapawi, R.
Low Noise Figure 2.4 GHz Down Conversion CMOS Mixer for Wireless Sensor Network Application
title Low Noise Figure 2.4 GHz Down Conversion CMOS Mixer for Wireless Sensor Network Application
title_full Low Noise Figure 2.4 GHz Down Conversion CMOS Mixer for Wireless Sensor Network Application
title_fullStr Low Noise Figure 2.4 GHz Down Conversion CMOS Mixer for Wireless Sensor Network Application
title_full_unstemmed Low Noise Figure 2.4 GHz Down Conversion CMOS Mixer for Wireless Sensor Network Application
title_short Low Noise Figure 2.4 GHz Down Conversion CMOS Mixer for Wireless Sensor Network Application
title_sort low noise figure 2.4 ghz down conversion cmos mixer for wireless sensor network application
topic T Technology (General)
url http://ir.unimas.my/id/eprint/15487/
http://ir.unimas.my/id/eprint/15487/
http://ir.unimas.my/id/eprint/15487/
http://ir.unimas.my/id/eprint/15487/1/Low%20noise%20figure%202.4%20GHz%20down%20conversion%20CMOS%20%28abstract%29.pdf