Mohamed Rabie I, Eldin Manal G, Farouk Ahmed, Ramadan A A, Abdel-Aty M
Mathematics and Computer Science Department, Faculty of Science, Beni-Suef University, Beni-Suef, Egypt.
Department of Computer Science, Faculty of Computers and Artificial Intelligence, South Valley University, Hurghada, Egypt.
Sci Rep. 2021 Nov 23;11(1):22726. doi: 10.1038/s41598-021-02051-2.
The present research is designed to examine the dynamic of the quantum computational speed in a nanowire system through the orthogonality speed when three distinct types of magnetic fields are applied: the strong magnetic field, the weak magnetic field, and no magnetic field. Moreover, we investigate the action of the magnetic fields, the spin-orbit coupling, and the system's initial states on the orthogonality speed. The observed results reveal that a substantial correlation between the intensity of the spin-orbit coupling and the dynamics of the orthogonality speed, where the orthogonality speed decreasing as the spin-orbit coupling increases. Furthermore, the initial states of the nanowire system are critical for regulating the speed of transmuting the information and computations.
强磁场、弱磁场和无磁场。此外,我们研究了磁场、自旋轨道耦合以及系统初始状态对正交速度的作用。观察结果表明,自旋轨道耦合强度与正交速度动态之间存在显著相关性,其中正交速度随自旋轨道耦合增加而降低。此外,纳米线系统的初始状态对于调节信息转换和计算速度至关重要。