Design and Analysis of New Level Shifter With Gate Driver for Li-Ion Battery Charger in 180nm CMOS Technology

Authors

  • A. Aarab Electronics, Signals, Systems and Computer Science Laboratory (LESSI), Department of Physics, Faculty of Sciences Dhar el Mehraz, Sidi Mohamed Ben Abdellah University, Fez, Morocco.
  • A. Lakhssassi Department of Computer Science and Engineering, University of Quebec in Outaouais, (UQO) B-2014, Pavillon Lucien-Brault, Canada.
  • A. Tahiri Laboratory of Computer Science and Interdisciplinary Physics, Sidi Mohamed Ben Abdellah University, ENS- Fez, Morocco.
  • F. Farah Electronics, Signals, Systems and Computer Science Laboratory (LESSI), Department of Physics, Faculty of Sciences Dhar el Mehraz, Sidi Mohamed Ben Abdellah University, Fez, Morocco.
  • H. Qjidaa Electronics, Signals, Systems and Computer Science Laboratory (LESSI), Department of Physics, Faculty of Sciences Dhar el Mehraz, Sidi Mohamed Ben Abdellah University, Fez, Morocco.
  • K. El Khadiri Electronics, Signals, Systems and Computer Science Laboratory (LESSI), Department of Physics, Faculty of Sciences Dhar el Mehraz, Sidi Mohamed Ben Abdellah University, Fez, Morocco.
  • M. El Alaoui Electronics, Signals, Systems and Computer Science Laboratory (LESSI), Department of Physics, Faculty of Sciences Dhar el Mehraz, Sidi Mohamed Ben Abdellah University, Fez, Morocco.
Abstract:

In this work, the design and analysis of new Level Shifter with Gate Driver for Li-Ion battery charger is proposed for high speed and low area in 180nm CMOS technology. The new proposed level shifter is used to raise the voltage level and significantly reduces transfer delay 1.3ns (transfer delay of conventional level shifter) to 0.15ns with the same input signal. Also, the level shifter with gate driver achieves a propagation delay of less than 0.25ns and the total area is only 0.05mm2. The proposed level shifter with gate driver was designed, simulated and layouted in Cadence using TSMC 180nm CMOS technology.

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Journal title

volume 15  issue 4

pages  477- 484

publication date 2019-12

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