论文标题

光谱回收时空波浪包

Spectrally recycling space-time wave packets

论文作者

Hall, Layton A., Abouraddy, Ayman F.

论文摘要

“时空”(ST)波数据包是传播不变的脉冲光束,它们在线性介质中刚性传播而无需衍射或分散在潜在的任意组速度下。这些独特的特征是引入田间引入的时空光谱相关性的结果。具体而言,每个空间频率都与单个时间频率(或波长)相关联。因此,ST波数据包的空间和时间带宽是相关的,因此利用具有较大时间带宽的光源或达到超大基团速度的光源需要一个高速较大的数值孔径。在这里,我们表明“光谱回收”可以帮助克服这些挑战。 “回收”或“重复使用”每个空间频率通过将其与多个不同但广泛分离的时间频率相关联,使人们可以规避ST波数据包的空间和时间带宽之间的相称性,这是自从其开始以来的永久特征之一。我们通过实验证明,ST波包的传播不变性,最大传播距离和组速度不受光谱回收的影响。我们还与组速度C/14.3合成一个ST波数据包(C是真空中的光速),通过光谱回收使合理的数值光圈成为可能。

'Space-time' (ST) wave packets are propagation-invariant pulsed optical beams that travel rigidly in linear media without diffraction or dispersion at a potentially arbitrary group velocity. These unique characteristics are a result of spatio-temporal spectral correlations introduced into the field; specifically, each spatial frequency is associated with a single temporal frequency (or wavelength). Consequently, the spatial and temporal bandwidths of ST wave packets are correlated, so that exploiting an optical source with a large temporal bandwidth or achieving an ultralow group velocity necessitate an exorbitantly large numerical aperture. Here we show that `spectral recycling' can help overcome these challenges. 'Recycling' or `reusing' each spatial frequency by associating it with multiple distinct but widely separated temporal frequencies allows one to circumvent the proportionality between the spatial and temporal bandwidths of ST wave packets, which has been one of their permanent characteristics since their inception. We demonstrate experimentally that the propagation invariance, maximum propagation distance, and group velocity of ST wave packets are unaffected by spectral recycling. We also synthesize a ST wave packet with group velocity c/14.3 (c is the speed of light in vacuum) with a reasonable numerical aperture made possible by spectral recycling.

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