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Design and performance analysis of SOA-MZI based reversible toffoli and irreversible AND logic gates in a single photonic circuit

机译:在单个光子电路中基于SOA-MZI的可逆金属丝和不可逆AND逻辑门的设计和性能分析

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摘要

With the increasing flow of information, data rate is increasing very rapidly. This has resulted in increased amount of heat dissipation from the processing nodes. Generally electronic processors dissipate heat if the data rate is very high. Therefore electronic processors should be replaced by optical processors with optical gates as their foundation. Another reason for heat dissipation is the loss of information bits at the processing nodes. This can be reduced by introducing reversible computing. A combination of optical reversible and irreversible gates at the processing nodes can recover data and minimize power dissipation and consumption. In this article semiconductor optical amplifier-Mach-Zehnder interferometer based all optical reversible Toffoli gate and AND gate in a single photonic circuit has been designed. The performance of the gates has been analyzed through extinction ratio and quality factor. Different types of gates (reversible, irreversible) on a single photonic chip will slowly but surely lead towards all optical processing of data with added advantage of recovery of input data.
机译:随着信息流的增加,数据速率正在迅速增加。这导致处理节点的散热量增加。通常,如果数据速率很高,则电子处理器会散热。因此,应该以光闸为基础的光处理器代替电子处理器。散热的另一个原因是处理节点上信息位的丢失。可以通过引入可逆计算来减少这种情况。处理节点处的光可逆和不可逆门的组合可以恢复数据,并最大程度地降低功耗和功耗。在本文中,已经设计了基于单个光子电路中所有可逆Toffoli门和AND门的半导体光放大器-Mach-Zehnder干涉仪。闸门的性能已通过消光比和品质因数进行了分析。单个光子芯片上的不同类型的门(可逆,不可逆)将缓慢但必定会导致对数据进行所有光学处理,并具有恢复输入数据的优势。

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