Vortex plate retarder-based approach for the generation of sub-20 fs light pulses carrying orbital angular momentum

IF 2 4区 物理与天体物理 Q3 OPTICS Journal of Optics Pub Date : 2024-03-12 DOI:10.1088/2040-8986/ad2e1f
Tlek Tapani, Haifeng Lin, Aitor De Andres, Spencer W Jolly, Hinduja Bhuvanendran, Nicolò Maccaferri
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Abstract

We use a vortex retarder-based approach to generate few optical cycles light pulses carrying orbital angular momentum (OAM) (known also as twisted light or optical vortex) from a Yb:KGW oscillator pumping a noncollinear optical parametric amplifier generating sub-10 fs linearly polarized light pulses in the near infrared spectral range (central wavelength 850 nm). We characterize such vortices both spatially and temporally by using astigmatic imaging technique and second harmonic generation-based frequency resolved optical gating, respectively. The generation of optical vortices is analyzed, and its structure reconstructed by estimating the spatio-spectral field and Fourier transforming it into the temporal domain. As a proof of concept, we show that we can also generate sub-20 fs light pulses carrying OAM and with arbitrary polarization on the first-order Poincaré sphere.
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基于涡流板缓速器的方法,用于产生携带轨道角动量的 20 fs 以下光脉冲
我们采用一种基于旋涡延缓器的方法,从一个 Yb:KGW 振荡器抽运一个非共轭光参量放大器,在近红外光谱范围(中心波长 850 nm)产生亚 10 fs 线性偏振光脉冲,从而产生携带轨道角动量(OAM)的几个光周期光脉冲(也称为扭曲光或光学旋涡)。我们利用散焦成像技术和基于二次谐波发生的频率分辨光门控技术,分别从空间和时间上描述了这种旋涡。我们分析了光涡旋的产生,并通过估计空间谱场和将其傅里叶变换到时域来重建其结构。作为概念验证,我们证明了我们也能在一阶波恩卡莱球上产生携带 OAM 和任意偏振的 20 fs 以下光脉冲。
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来源期刊
CiteScore
4.50
自引率
4.80%
发文量
237
审稿时长
1.9 months
期刊介绍: Journal of Optics publishes new experimental and theoretical research across all areas of pure and applied optics, both modern and classical. Research areas are categorised as: Nanophotonics and plasmonics Metamaterials and structured photonic materials Quantum photonics Biophotonics Light-matter interactions Nonlinear and ultrafast optics Propagation, diffraction and scattering Optical communication Integrated optics Photovoltaics and energy harvesting We discourage incremental advances, purely numerical simulations without any validation, or research without a strong optics advance, e.g. computer algorithms applied to optical and imaging processes, equipment designs or material fabrication.
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