Abstrac'/> Femtosecond laser irradiation of olivine single crystals: Experimental simulation of space weathering
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Femtosecond laser irradiation of olivine single crystals: Experimental simulation of space weathering

机译:橄榄石单晶的飞秒激光照射:空气耐候实验模拟

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AbstractSpace weathering is one of the most common surface process occurring on atmosphere-free bodies such as asteroids and the Moon. It is caused mainly by solar wind irradiation and the impact of micrometeoroids. In order to simulate space weathering effects, in particular those produced by hypervelocity impacts, we produced microcraters via ultra-short (~100?fs) laser irradiation of crystallographically oriented slices of forsterite-rich (Fo94.7) olivine. The main advantages of the application of a femtosecond laser radiation to reproduce the space weathering effects are (1) the high peak irradiance (1015?W cm?2), which generates the propagation of the shock wave at the nanosecond timescale (i.e., timescale of the micrometeoroid impacts); (2) the rapid transfer of energy to the target material, which avoids the interaction of laser light with the developing vapor plume; (3) a small laser beam, which allows the effects of a single impact to be simulated. The results of our spectroscopic and electron microscopic investigation validate this approach: the samples show strong darkening and reddening of the reflectance spectra and structural damages similar to the natural microcraters found on regolith grains of the Moon and asteroid 25143 Itokawa. Detailed investigations of several microcrater cross-sections by transmission electron microscopy allowed the detection of shock-induced defect microstructures. From the top to the bottom of the grain, the shock wave causes evaporation, melting, solid-state recrystallization, misorientation, fracturing, and the propagation of dislocations with Burgers
机译:<![cdata [ Abstract 空气风化是在无气氛体内发生的最常见的表面过程之一,如小行星和月亮。它主要是由太阳风照射和微观物流的影响引起的。为了模拟空气风化效果,特别是通过超胶质损伤产生的空气效果,我们通过超短(〜100〜Fs)产生微科学的富含碎屑切片切片的激光照射(FO 94.7 )橄榄石。应用飞秒激光辐射以再现空间风化效果的主要优点是(1)高峰辐照度(10 15 ?W CM ?2 ),它在纳秒时间尺度(即,微象性突变的时间尺寸)产生冲击波的传播; (2)将能量快速转移到目标材料,这避免了激光与显影蒸气羽流的相互作用; (3)小激光束,允许模拟单一冲击的效果。我们的光谱和电子显微镜调查的结果验证了这种方法:样品显示出强烈的变暗和变红的反射光谱和类似于月球和小行星25143 Itokaw上的天然粒子上的天然微科学的结构损伤。通过透射电子显微镜的几种微都横截面的详细研究允许检测冲击诱导的缺陷微观结构。从谷物的顶部到底部,冲击波导致蒸发,熔化,固态重结晶,无知,压裂和与汉堡的脱位繁殖

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