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A chip-integrated coherent photonic-phononic memory

机译:芯片集成相干光子声子存储器

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摘要

Controlling and manipulating quanta of coherent acoustic vibrations—phonons—in integrated circuits has recently drawn a lot of attention, since phonons can function as unique links between radiofrequency and optical signals, allow access to quantum regimes and offer advanced signal processing capabilities. Recent approaches based on optomechanical resonators have achieved impressive quality factors allowing for storage of optical signals. However, so far these techniques have been limited in bandwidth and are incompatible with multi-wavelength operation. In this work, we experimentally demonstrate a coherent buffer in an integrated planar optical waveguide by transferring the optical information coherently to an acoustic hypersound wave. Optical information is extracted using the reverse process. These hypersound phonons have similar wavelengths as the optical photons but travel at five orders of magnitude lower velocity. We demonstrate the storage of phase and amplitude of optical information with gigahertz bandwidth and show operation at separate wavelengths with negligible cross-talk.
机译:由于声子可以充当射频和光信号之间的唯一链接,允许访问量子状态并提供先进的信号处理能力,因此控制和操纵集成电路中相干声振动(声子)的量子已引起了广泛的关注。基于光机械谐振器的最新方法已经实现了令人印象深刻的质量因数,从而可以存储光信号。但是,到目前为止,这些技术在带宽上受到限制,并且与多波长操作不兼容。在这项工作中,我们通过将光学信息相干地传输到声超音波,以实验方式展示了集成平面光波导中的相干缓冲器。使用逆过程提取光学信息。这些高声子声子具有与光学光子相似的波长,但传播速度降低了五个数量级。我们演示了千兆赫兹带宽的光学信息的相位和幅度的存储,并显示了在串扰可忽略不计的单独波长下的操作。

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