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Experimental designs of ballistic reversible logic gates using fluxons

机译:使用磁通子的弹道可逆逻辑门的实验设计

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Compared to irreversible gate operations, reversible digital logic gates can provide a fundamental advantage in energy efficiency. Here we discuss previously discovered 1-bit ballistic reversible logic gates and new experimental plans to measure it. The gates consist of long Josephson junctions (LJJs) connected by a circuit interface. The gate dynamics evanescently extends into the LJJs to realize the physically resonant gate operation. It differs from known adiabatic superconducting gates because it does not work in the adiabatic limit. Depending on the gate type, that is the Identity or NOT gate, the polarity of the outgoing fluxon should be preserved or inverted, respectively. The dynamics of the scattering process, originally discovered in full numerical simulation, is understood using collective coordinate analysis. We plan to experimentally study how well a fluxon can travel ballistically towards the interface, and scatter with the designed gate operation. Here we present gate and SQUID-sensing layout designs for a NOT gate. The LJJ circuit layout uses niobium trilayer short junctions with connecting wiring for inductors. Part of the design includes the shunting capacitors at the gate interface which is key for the resonant dynamics in the gates.
机译:与不可逆门操作相比,可逆数字逻辑门可以在能源效率方面提供基本优势。在这里,我们讨论先前发现的1位弹道可逆逻辑门和测量它的新实验计划。门由通过电路接口连接的长约瑟夫森结(LJJ)组成。栅极动力学逐渐淡化到LJJ中,以实现物理谐振栅极操作。它不同于已知的绝热超导门,因为它在绝热极限内不起作用。根据门的类型,即身份门或非门,应分别保留或反转输出磁通的极性。使用集体坐标分析可以了解最初在完整数值模拟中发现的散射过程的动力学。我们计划通过实验研究助焊剂能如何弹道朝界面传播,并随着设计的闸门操作而分散。在这里,我们介绍了非门的门和SQUID感应布局设计。 LJJ电路布局使用三层铌短结,并带有用于电感器的连接线。设计的一部分包括在栅极接口处的并联电容器,这是栅极中谐振动态的关键。

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