Li Jian-Cheng, Xiao Jin-Long, Yang Yue-De, Chen You-Ling, Huang Yong-Zhen
State Key Laboratory of Integrated Optoelectronics, Institute of Semiconductors, Chinese Academy of Sciences, Beijing 100083, China.
Center of Material Science and Optoelectronic Technology, University of Chinese Academy of Sciences, Beijing 100049, China.
Nanophotonics. 2023 Oct 13;12(21):4109-4116. doi: 10.1515/nanoph-2023-0549. eCollection 2023 Oct.
Chaotic semiconductor lasers have been widely investigated for high-speed random bit generation, which is applied for the generation of cryptographic keys for classical and quantum cryptography systems. Here, we propose and demonstrate a self-chaotic microlaser with enhanced chaotic bandwidth for high-speed random bit generation. By designing tri-mode interaction in a deformed square microcavity laser, we realize a self-chaotic laser caused by two-mode internal interaction, and achieve an enhanced chaotic standard bandwidth due to the photon-photon resonance effect by introducing the third mode. Moreover, 500 Gb/s random bit generation is realized and the randomness is verified by the NIST SP 800-22 statistics test. Our demonstration promises the applications of microlasers in secure communication, chaos radar, and optical reservoir computing, and also provides a platform for the investigations of multimode nonlinear laser dynamics.
混沌半导体激光器已被广泛研究用于高速随机比特生成,该技术应用于经典和量子密码系统的密钥生成。在此,我们提出并演示了一种具有增强混沌带宽的自混沌微激光器,用于高速随机比特生成。通过在变形方形微腔激光器中设计三模相互作用,我们实现了由双模内部相互作用引起的自混沌激光器,并通过引入第三模利用光子 - 光子共振效应实现了增强的混沌标准带宽。此外,实现了500 Gb/s的随机比特生成,并通过美国国家标准与技术研究院(NIST)SP 800 - 22统计测试验证了其随机性。我们的演示有望推动微激光器在安全通信、混沌雷达和光学储能计算中的应用,也为多模非线性激光动力学的研究提供了一个平台。