Dong Mark, Boyle Julia M, Palm Kevin J, Zimmermann Matthew, Witte Alex, Leenheer Andrew J, Dominguez Daniel, Gilbert Gerald, Eichenfield Matt, Englund Dirk
The MITRE Corporation, 202 Burlington Road, Bedford, MA, 01730, USA.
Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.
Nat Commun. 2023 Nov 24;14(1):7716. doi: 10.1038/s41467-023-42866-3.
Programmable photonic integrated circuits (PICs) are emerging as powerful tools for control of light, with applications in quantum information processing, optical range finding, and artificial intelligence. Low-power implementations of these PICs involve micromechanical structures driven capacitively or piezoelectrically but are often limited in modulation bandwidth by mechanical resonances and high operating voltages. Here we introduce a synchronous, micromechanically resonant design architecture for programmable PICs and a proof-of-principle 1×8 photonic switch using piezoelectric optical phase shifters. Our design purposefully exploits high-frequency mechanical resonances and optically broadband components for larger modulation responses on the order of the mechanical quality factor Q while maintaining fast switching speeds. We experimentally show switching cycles of all 8 channels spaced by approximately 11 ns and operating at 4.6 dB average modulation enhancement. Future advances in micromechanical devices with high Q, which can exceed 10000, should enable an improved series of low-voltage and high-speed programmable PICs.
可编程光子集成电路(PIC)正成为控制光的强大工具,应用于量子信息处理、光学测距和人工智能领域。这些PIC的低功耗实现方式涉及通过电容或压电驱动的微机械结构,但调制带宽往往受到机械共振和高工作电压的限制。在此,我们介绍一种用于可编程PIC的同步微机械共振设计架构以及一个使用压电光学相移器的原理验证1×8光子开关。我们的设计有意利用高频机械共振和光学宽带组件,以在机械品质因数Q的量级上实现更大的调制响应,同时保持快速的开关速度。我们通过实验展示了所有8个通道的开关周期间隔约为11纳秒,平均调制增强为4.6分贝。具有超过10000的高Q值的微机械器件的未来进展,应能实现一系列改进的低电压和高速可编程PIC。