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微球谐振器中热光和热耗散过程的实时观测

Real-time observation of the thermo-optical and heat dissipation processes in microsphere resonators.

作者信息

Zhou Haidong, Xiao Bowen, Yang Ningning, Yuan Shixing, Zhu Song, Duan Yuhua, Shi Lei, Zhang Chi, Zhang Xinliang

出版信息

Opt Express. 2021 Jan 18;29(2):2402-2410. doi: 10.1364/OE.408568.

DOI:10.1364/OE.408568
PMID:33726436
Abstract

This work reports the real-time observation of the thermo-optical dynamics in silica microsphere resonators based on the dispersive time stretch technique. In general, the thermo-optical dynamics of silica microsphere resonators, including the thermal refraction and thermal expansion, can be characterized by the resonance wavelength shift, whose duration is at the millisecond timescale. However, this fast wavelength shift process cannot be directly captured by conventional spectroscopy, and only its transmission feature can be characterized by a fast-scanning laser and an intensity detector. With the advance of the time-stretch spectroscopy, whose temporal resolution is up to tens of nanoseconds, the thermo-optical dynamics can be observed in a more straight-forward way, by utilizing the pump-probe technology and mapping the resonance wavelength to the time domain. Here, the thermo-optical dynamics are explored as a function of the power and the scanning rate of the pump laser. Theoretical simulations reproduce the experimental results, revealing that the thermo-optical dynamics of silica microsphere resonators is dominated by the fast thermo-optical effect and the slow heat dissipation process to the surroundings, which leads to gradual regression of the resonance wavelength. This work provides an alternative solution for studying the thermo-optical dynamics in whispering gallery mode microresonators, which would be crucial for future applications of microresonator photonic systems.

摘要

这项工作报道了基于色散时间拉伸技术对二氧化硅微球谐振器中热光动力学的实时观测。一般来说,二氧化硅微球谐振器的热光动力学,包括热折射和热膨胀,可以通过共振波长的移动来表征,其持续时间在毫秒时间尺度上。然而,这种快速的波长移动过程不能被传统光谱直接捕获,并且只有其传输特性可以通过快速扫描激光器和强度探测器来表征。随着时间拉伸光谱技术的发展,其时间分辨率高达数十纳秒,通过利用泵浦 - 探测技术并将共振波长映射到时间域,可以更直接地观测热光动力学。在此,研究了热光动力学与泵浦激光功率和扫描速率的函数关系。理论模拟再现了实验结果,揭示了二氧化硅微球谐振器的热光动力学由快速热光效应和向周围环境的缓慢散热过程主导,这导致共振波长逐渐回归。这项工作为研究回音壁模式微谐振器中的热光动力学提供了一种替代方案,这对于微谐振器光子系统的未来应用至关重要。

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