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Design and analysis of two Dot one Electron QCA Ex-OR gate in logically reversible gate design

机译:逻辑可逆门设计中的两点一电子QCA Ex-OR门设计与分析

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Priorities of digital industry have changed over decades. Now-a-days nanotechnology grasp the major attention of digital industry. Quantum dot Cellular Automata(QCA) came out to be an efficient nanotechnology which can replace existing technologies in nanoscale. One of the well studied and researched variant of QCA is 4 Dot 2 Electron QCA. In the present scope our complete focus will be on 2 Dot 1 Electron QCA which is an emerging variant of QCA. This paper presents an improved design strategy of Ex-OR gate using 2 Dot 1 Elecron Quantum Cellular Automata(QCA) which consists of only 23 many 2 Dot 1 Electron QCA cells. The proposed design reduces the number of cells in comparison to the existing Ex-OR gate design in [1]. The proposed design of the EX-OR gate not only ensures high degree of compactness but also a huge reduction in the amount of required energy. This design strategy reduces the energy requirement as well as energy dissipation both upto 15 percent. The proposed Ex-OR gate implementation achieves upto 95.83 percent of compactness which is nothing but an index of area utilization. This design methodology of Ex-OR gate can be utilized to design multiple digital logic circuits. In our present perview we use the Ex-OR gate design to implement different reversible logic gates such as Tofolli gate and Feynman gate. We also suggest the design methodology of the Fredkin gate which is a reversible gate. To the best of our knowledge the designs of reversible gates using 2 Dot 1 Electron QCA have not been reported in literature yet. The proposed designs are analyzed with respect to different energy parameters.
机译:数十年来,数字产业的优先级已发生变化。如今,纳米技术掌握了数字产业的主要关注点。量子点细胞自动机(QCA)成为一种可以替代现有纳米技术的高效纳米技术。 QCA的一种经过充分研究和研究的变体是4点2电子QCA。在目前的范围内,我们将重点关注2点1电子QCA,这是QCA的新兴形式。本文提出了一种改进的Ex-OR门设计策略,该方法使用了仅由23个2点1电子QCA单元组成的2点1电子量子量子自动机(QCA)。与[1]中的现有“异或”门设计相比,该设计减少了单元数量。提出的EX-OR门设计不仅可以确保高度的紧凑性,还可以大大减少所需的能量。这种设计策略将能耗和能耗均降低了15%。拟议的异或门实现方案可实现高达95.83%的紧凑度,这仅是面积利用率的指标。 Ex-OR门的这种设计方法可用于设计多个数字逻辑电路。在我们当前的观点中,我们使用“异或”门设计来实现不同的可逆逻辑门,例如Tofolli门和Feynman门。我们还建议使用可逆闸门弗雷德金门的设计方法。据我们所知,文献中尚未报道使用2点1电子QCA的可逆门的设计。针对不同的能量参数分析了提出的设计。

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