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Efficient bidirectional piezo-optomechanical transduction between microwave and optical frequency

机译:微波与光学频率之间的高效双向压电机械转换

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Efficient interconversion of both classical and quantum information between microwave and optical frequency is an important engineering challenge. The optomechanical approach with gigahertz-frequency mechanical devices has the potential to be extremely efficient due to the large optomechanical response of common materials, and the ability to localize mechanical energy into a micron-scale volume. However, existing demonstrations suffer from some combination of low optical quality factor, low electrical-to-mechanical transduction efficiency, and low optomechanical interaction rate. Here we demonstrate an on-chip piezo-optomechanical transducer that systematically addresses all these challenges to achieve nearly three orders of magnitude improvement in conversion efficiency over previous work. Our modulator demonstrates acousto-optic modulation with [Formula: see text] = 0.02 V. We show bidirectional conversion efficiency of [Formula: see text] with 3.3?μW? red-detuned optical pump, and [Formula: see text] with 323?μW?blue-detuned pump. Further study of quantum transduction at millikelvin temperatures is required to understand how the efficiency and added noise are affected by reduced mechanical dissipation, thermal conductivity, and thermal capacity.
机译:微波与光学频率之间的经典和量子信息的高效互连是重要的工程挑战。由于普通材料的大型光学力学响应,具有千兆赫兹频率机械装置的光学力学方法具有极高的效率,以及将机械能到微米级体积的能力。然而,现有示威性遭受低光学质量因数,低电 - 机械转导效率的某种组合,以及低光机械相互作用率。在这里,我们展示了一种片上的压电机械传感器,系统地解决了所有这些挑战,以实现对先前工作的转换效率的几乎三个数量级。我们的调制器用[公式:参见文本] = 0.02 V.我们展示了[公式:参见文本]的双向转换效率,3.3?μW的双向转换效率?红旋转光学泵,[公式:参见文本],323?μw?蓝色肌肉泵。需要进一步研究Millikelvin温度的量子转导,了解如何通过降低机械耗散,导热性和热容量来影响效率和增加的噪音。

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