Laser-induced damage measurements of crystalline coatings (Conference Presentation)

G. Cole, D. Follman, P. Heu, G. Truong, C. Deutsch, C. Franz, A. Alexandrovski, Bin Ma, Xinbin Cheng
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引用次数: 1

Abstract

Substrate-transferred crystalline coatings have emerged as a groundbreaking new concept in optical interference coatings. Building upon our initial demonstration of this technology in 2013, we have recently realized significant improvements in the optical performance of these novel single-crystal GaAs/AlGaAs multilayers. In the near-infrared, for center wavelengths spanning 1064 to 1560 nm, we have reduced the excess optical losses (scatter + absorption) to less than 5 ppm, with the direct measurement of sub-ppm optical absorption in these films, enabling the realization of a cavity finesse exceeding 600,000 at the telecom-relevant wavelength range near 1550 nm. In this presentation we outline preliminary measurements of the laser-induced damage threshold (LIDT) of these novel semiconductor-based interference coatings. For pulsed excitation (ns pulse durations at 1064 nm), the narrow bandgap of the constituent mirror materials limits the LIDT to 3-5 J/cm2. Under these conditions, laser damage is driven by two-photon absorption (TPA) in the semiconductor multilayer, primarily the high-refractive-index GaAs films. Note that improved performance may be realized for illumination wavelengths >1740 nm, where TPA is eliminated. For continuous-wave (CW) illumination, the high thermal conductivity (~30 Wm-1K-1) and low intrinsic absorption yield the potential for excellent performance. Here we present preliminary CW damage measurements for a 10-ppm transmission quarter-wave GaAs/AlGaAs Bragg mirror transferred to super-polished fused silica, with only a 1.4 K temperature rise for an intensity of ~1.5 MW/cm2. Further efforts will continue to push the limits of the structure with the aim of determining the maximum CW intensity that such mirrors can tolerate.
晶体涂层激光损伤测量(会议报告)
基板转移晶体涂层是光学干涉涂层中一个突破性的新概念。在2013年首次演示该技术的基础上,我们最近实现了这些新型单晶GaAs/AlGaAs多层材料光学性能的重大改进。在近红外波段,对于1064至1560 nm的中心波长,我们通过直接测量这些薄膜的亚ppm光吸收,将多余的光学损耗(散射+吸收)降低到小于5 ppm,从而实现了在1550 nm附近的电信相关波长范围内超过600,000的空腔精细度。在本报告中,我们概述了这些新型半导体基干涉涂层的激光诱导损伤阈值(LIDT)的初步测量。对于脉冲激发(ns脉冲持续时间为1064 nm),反射镜材料的窄带隙将LIDT限制在3-5 J/cm2。在这些条件下,激光损伤是由半导体多层(主要是高折射率GaAs薄膜)中的双光子吸收(TPA)驱动的。请注意,在消除TPA的照明波长>1740 nm时,可以实现性能的改进。对于连续波(CW)照明,高导热系数(~30 Wm-1K-1)和低本征吸收产生了优异的性能潜力。在这里,我们提出了10 ppm传输四分之一波GaAs/AlGaAs Bragg反射镜转移到超抛光熔融二氧化硅上的初步连续波损伤测量,强度约为1.5 MW/cm2,温度仅升高1.4 K。进一步的努力将继续推动结构的极限,目的是确定这种镜子可以容忍的最大连续波强度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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