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Ultrafast measurements of optical spectral coherence by single-shot time-stretch interferometry

机译:通过单次时间拉伸干涉法超快地测量光谱相干性

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The palette of laser technology has significantly been enriched by the innovations in ultrafast optical pulse generation. Our knowledge of the complex pulse dynamics, which is often highly nonlinear and stochastic in nature, is however limited by the scarcity of technologies that can measure fast variation/fluctuation of the spectral phase (or coherence) and amplitude in real-time, continuously. To achieve this goal, we demonstrate ultrafast interferometry enabled by optical time-stretch for real- time spectral coherence characterization with microsecond-resolution. Accessing the single-shot interferograms continuously, it further reveals the degree of second-order coherence, defined by the cross-spectral density function, at high speed-a capability absent in any existing spectroscopic measurement tools. As the technique can simultaneously measure both the high-speed variations of spectrally resolved coherence and intensity, time-stretch interferometry could create a new arena for ultrafast pulse characterization, especially favorable for probing and understanding the non-repetitive or stochastic dynamics in real-time.
机译:超快光脉冲产生的创新极大地丰富了激光技术的面貌。但是,我们对复杂的脉冲动力学的认识通常是高度非线性和随机的,但是由于缺乏可实时连续实时测量频谱相位(或相干性)和振幅的快速变化/波动的技术而受到限制。为了实现这一目标,我们演示了通过光学时间拉伸实现的超快速干涉测量技术,可实现微秒级分辨率的实时光谱相干表征。连续访问单次干涉图,它进一步揭示了由互谱密度函数定义的高速二阶相干度,这是任何现有光谱测量工具所不具备的能力。由于该技术可以同时测量频谱分辨的相干性和强度的高速变化,因此时间拉伸干涉测量法可以为超快脉冲表征创造新的舞台,特别有利于实时探测和理解非重复或随机动力学。 。

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