Zhou Jiahao, Guo Pengxing, Li Jingsi, Lu Bing, Duong Luan H K, Hou Weigang, Guo Lei
Opt Express. 2023 Oct 9;31(21):34154-34168. doi: 10.1364/OE.502943.
This paper proposes an all-optical second-order ordinary differential equation (SODE) solver based on a single microdisk resonator. We validate the feasibility of our structure for constant and complex coefficient SODE solutions for Gaussian and super-Gaussian pulses. The results demonstrate a good agreement between the solutions obtained with the designed structure and those obtained through mathematical calculations for both constant and complex coefficient SODEs. We also discuss the influence of input optical signal pulse width on solution result deviations. Furthermore, we validate the capability of the designed structure to achieve tunable solutions for complex-coefficient SODEs with a tuning power of less than 10 mW. The device footprint is approximately 20×30 μm, and it is 3-4 times smaller than the current smallest solving unit. The maximum Q-factor reaches 9.8×10. The proposed device avoids the traditional approach of cascading two resonators for SODE solving. Moreover, achieving mode alignment within the same resonator reduces the process challenges associated with aligning multiple devices in a cascade. Furthermore, it offers wider applicability for solving SODEs, namely, the ability to solve both constant and complex coefficient SODEs with complete derivative terms.
本文提出了一种基于单个微盘谐振器的全光二阶常微分方程(SODE)求解器。我们验证了该结构对于高斯脉冲和超高斯脉冲的常系数和复系数SODE解的可行性。结果表明,对于常系数和复系数SODE,所设计结构得到的解与通过数学计算得到的解之间具有良好的一致性。我们还讨论了输入光信号脉冲宽度对解结果偏差的影响。此外,我们验证了所设计结构能够以小于10 mW的调谐功率实现复系数SODE的可调谐解。该器件的占地面积约为20×30μm,比目前最小的求解单元小3至4倍。最大品质因数达到9.8×10。所提出的器件避免了传统的级联两个谐振器来求解SODE的方法。此外,在同一谐振器内实现模式对准减少了与级联中多个器件对准相关的工艺挑战。此外,它为求解SODE提供了更广泛的适用性,即能够求解具有完整导数项的常系数和复系数SODE。