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Amorphous salts formed from rapid dehydration of multicomponent chloride and ferric sulfate brines: Implications for Mars

机译:多组分氯化物和硫酸铁盐水快速脱水形成的无定形盐:对火星的影响

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摘要

Salts with high hydration states have the potential to maintain high levels of relative humidity (RH) in the near subsurface of Mars, even at moderate temperatures. These conditions could promote deliquescence of lower hydrates of ferric sulfate, chlorides, and other salts. Previous work on deliquesced ferric sulfates has shown that when these materials undergo rapid dehydration, such as that which would occur upon exposure to present day Martian surface conditions, an amorphous phase forms. However, the fate of deliquesced halides or mixed ferric sulfate-bearing brines are presently unknown. Here we present results of rapid dehydration experiments on Ca–, Na–, Mg– and Fe–chloride brines and multi-component (Fe2 (SO4)3 ± Ca, Na, Mg, Fe, Cl, HCO3) brines at ∼21°C, and characterize the dehydration products using visibleear-infrared (VNIR) reflectance spectroscopy, mid-infrared attenuated total reflectance spectroscopy, and X-ray diffraction (XRD) analysis. We find that rapid dehydration of many multicomponent brines can form amorphous solids or solids with an amorphous component, and that the presence of other elements affects the persistence of the amorphous phase under RH fluctuations. Of the pure chloride brines, only Fe–chloride formed an amorphous solid. XRD patterns of the multicomponent amorphous salts show changes in position, shape, and magnitude of the characteristic diffuse scattering observed in all amorphous materials that could be used to help constrain the composition of the amorphous salt. Amorphous salts deliquesce at lower RH values compared to their crystalline counterparts, opening up the possibility of their role in potential deliquescence-related geologic phenomena such as recurring slope lineae (RSLs) or soil induration. This work suggests that a wide range of aqueous mixed salt solutions can lead to the formation of amorphous salts and are possible for Mars; detailed studies of the formation mechanisms, stability and transformation behaviors of amorphous salts are necessary to further constrain their contribution to Martian surface materials.
机译:具有高水合态的盐即使在中等温度下,也有可能在火星附近的地下保持较高的相对湿度(RH)。这些条件可以促进硫酸铁,氯化物和其他盐的低级水合物的潮解。以前对潮解性硫酸铁的研究表明,当这些物质进行快速脱水时,例如在暴露于当今火星表面条件时会发生脱水,就会形成无定形相。但是,目前尚不清楚潮解的卤化物或含硫酸铁的混合盐水的命运。在这里,我们介绍了在约21°C的Ca,Na,Mg和Fe氯化物盐水和多组分(Fe2(SO4)3±Ca,Na,Mg,Fe,Cl,HCO3)盐水中进行快速脱水实验的结果C,并使用可见/近红外(VNIR)反射光谱,中红外衰减全反射光谱和X射线衍射(XRD)分析来表征脱水产物。我们发现,许多多组分盐水的快速脱水会形成无定形固体或具有无定形成分的固体,并且其他元素的存在会影响RH波动下无定形相的持久性。在纯氯化物盐水中,只有氯化铁形成无定形固体。多组分无定形盐的XRD图谱显示了在所有无定形材料中观察到的特征扩散散射的位置,形状和大小变化,这些变化可用于帮助限制无定形盐的组成。与结晶态的盐类相比,非晶态盐在较低的RH值时会潮解,这可能会导致其在潜在的与潮热性相关的地质现象中发挥作用,例如反复发生的斜坡线(RSL)或土壤硬结。这项工作表明,广泛的混合盐水溶液可以导致无定形盐的形成,并且对于火星来说是可能的。对无定形盐的形成机理,稳定性和转变行为的详细研究对于进一步限制其对火星表面材料的贡献是必要的。

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