Soft nanocomputing with QCA: Multipurpose sequential circuit realizations of D-latch, SRAM, flip-flop, and down counter

Jitendra Kumar, Angshuman Khan, Rajeev Kumar Arya · Sustainable Computing Informatics and Systems · 2025

This article presents the design and performance optimization of fundamental sequential circuits, a latch, SRAM, flip-flops, and a two-bit asynchronous down counter, within the Quantum-dot Cellular Automata (QCA) paradigm. As an effective alternative to conventional microelectronics, QCA utilizes quantum dots to encode binary information, promising ultra-low power consumption, higher speed, and superior circuit density while overcoming inherent scaling limitations. A major contribution is that all proposed circuits are realized as multiplexer-based single-layer designs, enhancing their structural simplicity and integrability. These designs, developed using coplanar crossover techniques, were simulated in QCADesigner 2.0.3. The D -latch achieved a 22 % reduction in cell count and a 95 % lower QCA-specific cost. The D flip-flop reduced cell count by 16 % and majority gates by 33 %, while the J K flip-flop cut majority gates by 50 %. The T flip-flop showed significant improvements in area, latency, and cost metrics. The two-bit counter also reduced gate and inverter counts. Energy dissipation analysis with QCADesigner-E confirms these layouts as very efficient, scalable, and high-performance solutions for advanced nanocomputing.

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