论文标题
完全自由度的光子晶体空间光调节器
A full degree-of-freedom photonic crystal spatial light modulator
论文作者
论文摘要
利用光场的全部复杂性需要在空间和时间区域内完全控制所有自由度 - 当今空间光调节器(SLM),主动的元图和光学阶段阵列的开放目标。在这里,我们通过以四个关键进展实现的可编程光子晶体腔阵列来解决这一挑战:(i)通过逆设计近乎垂直的垂直耦合至高效的微腔,(ii)可通过优化的300毫米全磁力加工(III)使用PICOME MOTOR-PICOMER-PICOMER ENCONANCE ANCONANCE ANCONANCE ANIVERALY(III)闭合,(III)的triv and-niv'hymiv'hymiv''平面外腔控制通过高速微型阵列。将每个结合在一起,我们证明了与纳秒和FemtoJoule-rorder级开关的64个谐振器,二维SLM的几乎完整的时空控制。这项工作同时在空间和时间带宽限制附近操作波长尺度模式,以多模光控制的基本限制打开了新的可编程性制度。
Harnessing the full complexity of optical fields requires complete control of all degrees-of-freedom within a region of space and time -- an open goal for present-day spatial light modulators (SLMs), active metasurfaces, and optical phased arrays. Here, we solve this challenge with a programmable photonic crystal cavity array enabled by four key advances: (i) near-unity vertical coupling to high-finesse microcavities through inverse design, (ii) scalable fabrication by optimized, 300 mm full-wafer processing, (iii) picometer-precision resonance alignment using automated, closed-loop "holographic trimming", and (iv) out-of-plane cavity control via a high-speed micro-LED array. Combining each, we demonstrate near-complete spatiotemporal control of a 64-resonator, two-dimensional SLM with nanosecond- and femtojoule-order switching. Simultaneously operating wavelength-scale modes near the space- and time-bandwidth limits, this work opens a new regime of programmability at the fundamental limits of multimode optical control.