论文标题

光子芯片上的量子滑块和nand树

Quantum Slide and NAND Tree on a Photonic Chip

论文作者

Wang, Yao, Cui, Zi-Wei, Lu, Yong-Heng, Zhang, Xiao-Ming, Gao, Jun, Chang, Yi-Jun, Yung, Man-Hong, Jin, Xian-Min

论文摘要

在后月时代的时代,下一代计算模型将是由不同物理组件(例如光子芯片)组成的混合体系结构。在2008年,有人提出解决NAND-TREE问题可以通过量子步行加速。由于NAND门的普遍性,这种计划是开创性的。但是,到目前为止,从未实现实验演示,这主要是由于准备传播初始状态的挑战。在这里,我们提出了一种替代解决方案,包括一个称为“量子载玻片”的结构,该结构可以沿正确设计的链条确定性地生成一个传播高斯的波包。这样,可以通过普通的激光而不是单个光子来实现光学计算,并且可以通过单发测量而不是重复的量子测量来获得输出。在我们的实验演示中,基于光子芯片上的飞秒激光3D直接写入技术,光学NAND-Tree能够用四个输入位解决计算问题。这些结果消除了光子Nand-Tree计算的主要障碍,量子幻灯片的构建可能会在量子信息和量子光学器件中找到其他有趣的应用。

In the age of post-Moore era, the next-generation computing model would be a hybrid architecture consisting of different physical components such as photonic chips. In 2008, it has been proposed that the solving of NAND-tree problem can be sped up by quantum walk. Such scheme is groundbreaking due to the universality of NAND gate. However, experimental demonstration has never been achieved so far, mostly due to the challenge in preparing the propagating initial state. Here we propose an alternative solution by including a structure called "quantum slide", where a propagating Gaussian wave-packet can be generated deterministically along a properly-engineered chain. In this way, the optical computation can be achieved with ordinary laser light instead of single photon, and the output can be obtained by single-shot measurements instead of repeated quantum measurements. In our experimental demonstration, the optical NAND-tree is capable of solving computational problems with a total of four input bits, based on the femtosecond laser 3D direct-writing technique on a photonic chip. These results remove one main roadblock to photonic NAND-tree computation, and the construction of quantum slide may find other interesting applications in quantum information and quantum optics.

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