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Control of coherent information via on-chip photonic–phononic emitter–receivers

机译:通过片上光子-声子发射器-接收器控制相干信息

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摘要

Rapid progress in integrated photonics has fostered numerous chip-scale sensing, computing and signal processing technologies. However, many crucial filtering and signal delay operations are difficult to perform with all-optical devices. Unlike photons propagating at luminal speeds, GHz-acoustic phonons moving at slower velocities allow information to be stored, filtered and delayed over comparatively smaller length-scales with remarkable fidelity. Hence, controllable and efficient coupling between coherent photons and phonons enables new signal processing technologies that greatly enhance the performance and potential impact of integrated photonics. Here we demonstrate a mechanism for coherent information processing based on travelling-wave photon–phonon transduction, which achieves a phonon emit-and-receive process between distinct nanophotonic waveguides. Using this device, physics—which supports GHz frequencies—we create wavelength-insensitive radiofrequency photonic filters with frequency selectivity, narrow-linewidth and high power-handling in silicon. More generally, this emit-receive concept is the impetus for enabling new signal processing schemes.
机译:集成光子学的飞速发展催生了众多芯片规模的传感,计算和信号处理技术。但是,使用全光学设备很难执行许多关键的滤波和信号延迟操作。与以光速传播的光子不同,以较低速度移动的GHz声子可在相对较小的长度范围内以显着的保真度存储,过滤和延迟信息。因此,相干光子与声子之间可控且有效的耦合使新的信号处理技术能够大大提高集成光子的性能和潜在影响。在这里,我们展示了一种基于行波光子-声子换能的相干信息处理机制,该机制实现了不同纳米光子波导之间的声子发射和接收过程。使用支持GHz频率的物理学,我们可以在硅中创建具有频率选择性,窄线宽和高功率处理能力的对波长不敏感的射频光子滤波器。更一般地,这种发射-接收概念是实现新信号处理方案的动力。

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