Ashtiani Farshid
Opt Express. 2025 Jan 27;33(2):3501-3510. doi: 10.1364/OE.536535.
Significant advancements in integrated photonics have enabled high-speed and energy efficient systems for various applications, from data communications and high-performance computing to medical diagnosis, sensing, and ranging. However, data storage in these systems has been dominated by electronic memories that in addition to signal conversion between optical and electrical domains, necessitates conversion between analog to digital domains and electrical data movement between processor and memory that reduce the speed and energy efficiency. To date, scalable optical memory with optical control has remained an open problem. Here, we report an integrated photonic set-reset latch as a fundamental optical static memory unit based on universal optical logic gates. As a proof of concept, experimental implementation of the universal logic gates and realistic simulation of the latch are demonstrated on a programmable silicon photonic platform. Optical set, reset, and complementary outputs, scalability to a large number of memory units via the independent latch supply light, and compatibility with wavelength division multiplexing scheme and different photonic platforms enable more efficient and lower latency optical processing systems.
集成光子学的重大进展使得高速且节能的系统得以应用于从数据通信、高性能计算到医学诊断、传感和测距等各种领域。然而,这些系统中的数据存储一直由电子存储器主导,除了光域和电域之间的信号转换外,还需要在模拟和数字域之间进行转换以及在处理器和存储器之间进行电数据移动,这降低了速度和能源效率。迄今为止,具有光控功能的可扩展光学存储器仍然是一个未解决的问题。在此,我们报告一种基于通用光学逻辑门的集成光子置位 - 复位锁存器,作为基本的光学静态存储单元。作为概念验证,在可编程硅光子平台上展示了通用逻辑门的实验实现和锁存器的实际模拟。光学置位、复位和互补输出,通过独立的锁存器供电光可扩展到大量存储单元,以及与波分复用方案和不同光子平台的兼容性,使得光学处理系统更高效且延迟更低。