论文标题

具有定期驱动的耗散量子系统的全光脉冲开关

All-optical pulse switching with a periodically driven dissipative quantum system

论文作者

Han, Yingying, Zhang, Wenxian, Li, Weidong

论文摘要

用于切换输入光学信号的全光开关而没有任何电流转换在下一代光学信息处理设备中起着至关重要的作用。甚至已经广泛研究了具有连续输入信号的全光开关(AOSS),由于时间依赖于时间依赖的汉密尔顿,尤其是对于散发性量子系统,因此很少研究其输入信号的全光脉冲开关(AOPS)。在本文中,我们提出了一个AOPS方案,其中使用强脉冲场来切换另一个脉冲输入信号。在Floquet-Lindblad理论的帮助下,我们确定可以有效打开/关闭输入信号的控制场,其振幅包络是在三级耗散系统中的方波(SW)脉冲序列。通过比较由连续波(CW)和SW控制场控制的AOPS的属性,我们发现SW场更适合作为控制输入SW信号的实用工具。有趣的是,开关功效在脉冲错误上是可靠的。提出的协议很容易在原子气或超导电路中实现,对应于AOPSS或全微波脉冲开关。

All-optical switching used to switch the input optical signals without any electro-optical conversion plays a vital role in the next generation of optical information processing devices. Even all-optical switchings (AOSs) with continuous input signals have been widely studied, all-optical pulse switchings (AOPSs) whose input signals are pulse sequences have rarely been investigated because of the time-dependent Hamiltonian, especially for dissipative quantum systems. In this paper, we propose an AOPS scheme, where a strong pulsed field is used to switch another pulsed input signal. With the help of Floquet-Lindblad theory, we identify the control field that can effectively turn on/off the input signal whose amplitude envelope is a square-wave (SW) pulse train in a three-level dissipative system. By comparing the properties of the AOPSs controlled by a continuous-wave (CW) field and an SW control field, we find that the SW field is more suitable to be a practical tool for controlling the input SW signal. It is interesting to impress that the switching efficacy is robust against pulse errors. The proposed protocol is readily implemented in atomic gases or superconducting circuits and corresponds to AOPSs or all-microwave pulse switchings.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源