2025/09/11 by Ruiling Weng, Weng, Ruiling, Elias R. Koch +12
Physics and Astronomy · Computer Science · #Advanced Fiber Laser Technologies #Nonlinear Photonic Systems #Nonlinear Dynamics and Pattern Formation
paper · pdf · doi:10.1103/k1cn-ngy6
We report the first experimental observation of discrete time crystal phases and crystallites in an actively mode-locked semiconductor laser. By tuning either the bias current or the modulation frequency, the system undergoes a spontaneous symmetry-breaking transition from the harmonically mode-locked state toward robust, highly coherent time crystal states that persist indefinitely. Two equivalent time crystal configurations can coexist as domains separated by sharp, long-lived boundaries analogous to domain walls. The phenomenon is successfully reproduced by a time-delayed model. Our findings demonstrate that mode-locked semiconductor lasers offer a readily accessible platform to explore and control nonequilibrium phases of light, enabling practical implementations of time crystal physics in photonic systems.