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Nontraditional Design of Dynamic Logics Using FDSOI for Ultra-Efficient Computing

Authors :
Shubham Kumar
Swetaki Chatterjee
Chetan Kumar Dabhi
Yogesh Singh Chauhan
Hussam Amrouch
Source :
IEEE Journal on Exploratory Solid-State Computational Devices and Circuits, Vol 9, Iss 1, Pp 74-82 (2023)
Publication Year :
2023
Publisher :
IEEE, 2023.

Abstract

In this article, we propose a nontraditional design of dynamic logic circuits using fully-depleted silicon-on-insulator (FDSOI) FETs. FDSOI FET allows the threshold voltage ( $V_{\text {t}}$ ) to be adjustable (i.e., low- $V_{\text {t}}$ and high- $V_{\text {t}}$ states) by using the back gate (BG) bias. Our design utilizes the front gate (FG) and BG of an FDSOI FET as the input terminals and proposes the dynamic logic gates (like NAND, NOR, AND, OR, XOR, and XNOR) and circuits (like a half-adder and full-adder). It requires fewer transistors to build dynamic logic gates and achieves high performance with low power dissipation compared to conventional dynamic logic designs. The compact industrial model of FDSOI FET (BSIM-IMG) has been used to simulate dynamic logic gates and is fully calibrated to reproduce the 14 nm FDSOI FET technology node data. Calibration is performed for both electrical characteristics and process variations. The simulation results show an average improvement in transistor count, propagation delay, power, and power-delay product (PDP) of 23.43%, 57.16%, 47.05%, and 77.29%, respectively, compared to the conventional designs. Further, our design reduces the charge-sharing effect, which affects the drivability of the dynamic logic gates. In addition, we have analyzed the impact of the process, supply voltage, and load capacitance variations on the propagation delay of the dynamic logic family in detail. The results show that these variations have a minor impact on the propagation delay of the proposed FDSOI-based dynamic logic gates compared to the conventional dynamic logic gates.

Details

Language :
English
ISSN :
23299231
Volume :
9
Issue :
1
Database :
Directory of Open Access Journals
Journal :
IEEE Journal on Exploratory Solid-State Computational Devices and Circuits
Publication Type :
Academic Journal
Accession number :
edsdoj.1f65d10a88e6444f8c5229fc53be357c
Document Type :
article
Full Text :
https://doi.org/10.1109/JXCDC.2023.3269141