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在时间、光谱和偏振方面具有分辨率的光的空间层析成像。

Spatial tomography of light resolved in time, spectrum, and polarisation.

作者信息

Plöschner Martin, Morote Marcos Maestre, Dahl Daniel Stephen, Mounaix Mickael, Light Greta, Rakić Aleksandar D, Carpenter Joel

机构信息

School of Information Technology and Electrical Engineering, The University of Queensland, Brisbane, QLD, 4072, Australia.

II-VI Incorporated, 48800 Milmont Dr., Fremont, CA, 94538, USA.

出版信息

Nat Commun. 2022 Jul 25;13(1):4294. doi: 10.1038/s41467-022-31814-2.

Abstract

Measuring polarisation, spectrum, temporal dynamics, and spatial complex amplitude of optical beams is essential to studying phenomena in laser dynamics, telecommunications and nonlinear optics. Current characterisation techniques apply in limited contexts. Non-interferometric methods struggle to distinguish spatial phase, while phase-sensitive approaches necessitate either an auxiliary reference source or a self-reference, neither of which is universally available. Deciphering complex wavefronts of multiple co-propagating incoherent fields remains particularly challenging. We harness principles of spatial state tomography to circumvent these limitations and measure a complete description of an unknown beam as a set of spectrally, temporally, and polarisation resolved spatial state density matrices. Each density matrix slice resolves the spatial complex amplitude of multiple mutually incoherent fields, which over several slices reveals the spectral or temporal evolution of these fields even when fields spectrally or temporally overlap. We demonstrate these features by characterising the spatiotemporal and spatiospectral output of a vertical-cavity surface-emitting laser.

摘要

测量光束的偏振、光谱、时间动态和空间复振幅对于研究激光动力学、电信和非线性光学中的现象至关重要。当前的表征技术应用场景有限。非干涉测量方法难以区分空间相位,而相敏方法则需要辅助参考源或自参考,这两者都并非普遍可用。解析多个共传播非相干场的复杂波前仍然极具挑战性。我们利用空间状态层析成像原理来规避这些限制,并将未知光束的完整描述测量为一组光谱、时间和偏振分辨的空间状态密度矩阵。每个密度矩阵切片解析多个相互非相干场的空间复振幅,通过几个切片可以揭示这些场的光谱或时间演化,即使场在光谱或时间上重叠。我们通过表征垂直腔面发射激光器的时空和空间光谱输出展示了这些特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/15b7/9314355/5397557c50c2/41467_2022_31814_Fig1_HTML.jpg

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