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Anomalous time delays and quantum weak measurements in optical micro-resonators

机译:光学微谐振器中的异常时间延迟和量子弱测量

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摘要

Quantum weak measurements, wavepacket shifts and optical vortices are universal wave phenomena, which originate from fine interference of multiple plane waves. These effects have attracted considerable attention in both classical and quantum wave systems. Here we report on a phenomenon that brings together all the above topics in a simple one-dimensional scalar wave system. We consider inelastic scattering of Gaussian wave packets with parameters close to a zero of the complex scattering coefficient. We demonstrate that the scattered wave packets experience anomalously large time and frequency shifts in such near-zero scattering. These shifts reveal close analogies with the Goos–Hänchen beam shifts and quantum weak measurements of the momentum in a vortex wavefunction. We verify our general theory by an optical experiment using the near-zero transmission (near-critical coupling) of Gaussian pulses propagating through a nano-fibre with a side-coupled toroidal micro-resonator. Measurements demonstrate the amplification of the time delays from the typical inverse-resonator-linewidth scale to the pulse-duration scale.
机译:量子弱测量,波包位移和光学涡旋是普遍的波现象,其源于多个平面波的精细干涉。这些效应在经典和量子波系统中都引起了相当大的关注。在这里,我们报告一种现象,它在一个简单的一维标量波系统中汇集了所有上述主题。我们考虑参数接近复数散射系数零的高斯波包的非弹性散射。我们证明了散射波包在这种接近零的散射中经历了异常大的时间和频率偏移。这些位移揭示了与Goos–Hänchen光束位移和涡旋波函数中动量的量子弱测量的相似性。我们通过光学实验验证了我们的一般理论,该光学实验使用了高斯脉冲的近零透射率(近临界耦合),该高斯脉冲通过带有侧耦合环形微谐振器的纳米纤维传播。测量表明,从典型的反向谐振器线宽刻度到脉冲持续时间刻度的时间延迟放大了。

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