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QCA-based design of polar encoder circuit
Sravan Kumar Vittapu
Ravichand Sankuru
Chepuri Rakshana
Beeradhar Mahesh
Amudha Naga Teja
Characterization and Application of Nanomaterials 2024, 7(2); https://doi.org/10.24294/can.v7i2.6401
Submitted:14 May 2024
Accepted:08 Jul 2024
Published:26 Jul 2024
Abstract

In the last few decades, nano-electronic devices have been manufactured using VLSI technology. Over the past four decades, IC technology has been growing by using CMOS technology successfully, but this CMOS technology has a scaling limitation. To overcome this scaling limitation, QCA (quantum dot cellular automata) emerges as an alternative. This work is the implementation of the design of a polar encoder using QCA technology. This design is a single-layered and even bottom-up approach technique. The Polar code is more efficient and has less energy dissipation compared to the turbo code and conventional codes (CC). This design explores (8:4). A Polar encoder is designed to have fewer cells and area compared to the turbo encoder and conventional encoder. The proposed design is implemented using the QCA designer tool.

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