Key Laboratory of advanced optoelectronic quantum architecture and measurements of Ministry of Education, Beijing Key Laboratory of Nanophotonics and Ultrafine Optoelectronic Systems, School of Physics, Beijing Institute of Technology, 100081 Beijing, China.
Frontier Science Center for Quantum Information, Beijing National Research Center for Information Science and Technology (BNRist), Electronic Engineering Department, Tsinghua University, Beijing 100084, China.
Sci Adv. 2023 May 26;9(21):eadg6685. doi: 10.1126/sciadv.adg6685.
Integrated quantum photonic circuit is a promising platform for the realization of quantum information processing in the future. To achieve the large-scale quantum photonic circuits, the applied quantum logic gates should be as small as possible for the high-density integration on chips. Here, we report the implementation of super-compact universal quantum logic gates on silicon chips by the method of inverse design. In particular, the fabricated controlled-NOT gate and Hadamard gate are both nearly a vacuum wavelength, being the smallest optical quantum gates reported up to now. We further design the quantum circuit by cascading these fundamental gates to perform arbitrary quantum processing, where the corresponding size is about several orders smaller than that of previous quantum photonic circuits. Our study paves the way for the realization of large-scale quantum photonic chips with integrated sources and can have important applications in the field of quantum information processes.
集成量子光子学电路是未来实现量子信息处理的一个很有前途的平台。为了实现大规模的量子光子学电路,应用的量子逻辑门应该尽可能小,以便在芯片上进行高密度集成。在这里,我们通过反设计的方法在硅片上实现了超紧凑的通用量子逻辑门。特别地,所制造的受控-NOT 门和 Hadamard 门都接近真空波长,是迄今为止报道的最小光学量子门。我们进一步通过级联这些基本门来设计量子电路以执行任意量子处理,其中相应的尺寸比以前的量子光子学电路小几个数量级。我们的研究为实现具有集成光源的大规模量子光子学芯片铺平了道路,并可在量子信息处理领域有重要应用。