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MineralSurface Rearrangement at High Temperatures:Implications for Extraterrestrial Mineral Grain Reactivity

机译:矿物高温下的表面重排:对地球外矿物晶粒反应性的影响

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摘要

Mineral surfaces play a critical role in the solar nebula as a catalytic surface for chemical reactions and potentially acted as a source of water during Earth’s accretion by the adsorption of water molecules to the surface of interplanetary dust particles. However, nothing is known about how mineral surfaces respond to short-lived thermal fluctuations that are below the melting temperature of the mineral. Here we show that mineral surfaces react and rearrange within minutes to changes in their local environment despite being far below their melting temperature. Polished surfaces of the rock and planetary dust-forming silicate mineral olivine ((Mg,Fe)2SiO4) show significant surface reorganization textures upon rapid heating resulting in surface features up to 40 nm in height observed after annealing at 1200 °C. Thus, high-temperature fluctuations should provide new and highly reactive sites for chemical reactions on nebula mineral particles. Our results also may help to explain discrepancies between short and long diffusion profiles in experiments where diffusion length scales are of the order of 100 nm or less.
机译:矿物表面在太阳星云中起着至关重要的作用,它是化学反应的催化表面,并可能在地球积聚过程中通过将水分子吸附到行星际尘埃颗粒表面上而充当水源。但是,对于矿物表面如何响应低于矿物熔化温度的短暂热波动一无所知。在这里,我们表明,尽管矿物表面的温度远低于其熔化温度,但它们在几分钟内就会发生反应并重新排列,以适应其局部环境的变化。岩石和行星形成粉尘的硅酸盐矿物橄榄石((Mg,Fe)2SiO4)的抛光表面在快速加热后显示出明显的表面重组织构,导致在1200°C退火后观察到的表面特征高达40 nm。因此,高温起伏应该为星云矿物颗粒上的化学反应提供新的高反应性位点。我们的结果也可能有助于解释在扩散长度标度为100 nm或更小的实验中长扩散曲线与短扩散曲线之间的差异。

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