论文标题

基于谷光子晶体的拓扑边缘状态,高性能手性全光逻辑门

High-performance chiral all-optical logic gate based on topological edge states of valley photonic crystal

论文作者

Wang, Xiaorong, Fei, Hongming, Lin, Han, Wu, Min, Kang, Lijuan, Zhang, Mingda, Liu, Xin, Yang, Yibiao, Xiao, Liantuan

论文摘要

对于全光通信和信息处理,有必要根据可以直接执行逻辑操作的光子结构来开发全光逻辑门。基于常规的波导和干涉法以及光子晶体结构已证明了全光逻辑门。但是,这些结构中的任何缺陷都会引入高散射损失,这会损害信息过程的保真度和对比度。基于可以实现山谷光子晶体(VPC)中拓扑边缘状态的缺陷 - 免疫单向传输的自旋谷锁定效应,我们提出了基于VPC结构的高性能全光逻辑或门。通过调整两个输入通道的工作带宽,我们可以防止两个通道之间的干扰以实现稳定和高保真输出。两个通道的透射率高于0.8,高对比度的高度为28.8 dB。此外,逻辑门的手性起源于自旋 - 瓦利锁定效果,允许使用不同的圆极化光作为输入,代表“ 1”或“ 0”,这在量子计算中是高度满足的。该设备的占地面积很小,可以进行高密度的芯片集成。此外,可以使用当前的纳米制造技术对该设计进行实验制造,并在光学通信,信息处理和量子计算中具有潜在的应用。

For all-optical communication and information processing, it is necessary to develop all-optical logic gates based on photonic structures that can directly perform logic operations. All-optical logic gates have been demonstrated based on conventional waveguides and interferometry, as well as photonic crystal structures. Nonetheless, any defects in those structures will introduce high scattering loss, which compromises the fidelity and contrast ratio of the information process. Based on the spin-valley locking effect that can achieve defect-immune unidirectional transmission of topological edge states in valley photonic crystals (VPCs), we propose a high-performance all-optical logic OR gate based on a VPC structure. By tuning the working bandwidth of the two input channels, we prevent interference between the two channels to achieve a stable and high-fidelity output. The transmittance of both channels is higher than 0.8, and a high contrast ratio of 28.8 dB is achieved. Moreover, the chirality of the logic gate originated from the spin-valley locking effect allows using different circularly polarized light as inputs, representing "1" or "0", which is highly desired in quantum computing. The device's footprint is small, allowing high-density on-chip integration. In addition, this design can be experimentally fabricated using current nanofabrication techniques and will have potential applications in optical communication, information processing, and quantum computing.

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