Mushroom-shaped Growth of Crystals on the Moon

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Jiaxin Xi, Yiping Yang, Hongping He, H. Xian, Shan Li, Xiaoju Lin, Jianxi Zhu, H. H. Teng
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Abstract

Advances in crystal nucleation and growth over the past three decades have led to the understanding that crystallization proceeds through a variety of pathways, ranging from the conventional atom-by-atom model to the particle aggregation- or amorphous transformation-based non-classical modes. Here, we present a novel mineralization mechanism exemplified by a lunar chromite formed via solid-liquid interface reactions, through investigations towards a lunar breccia returned by the Chang'e 5 mission. The chromite occurs in the middle of a whisker-shaped intergrowth structure made by olivine at the bottom and nanospheres of troilite and metallic iron at the top. Morphological observation and size statistics of the nanospheres, including those within the whisker structure and the others dispersed in glass, suggest the nanophases attached to olivine with coherent crystallographic orientations, possibly through an oriented aggregation process. The chromium deficiency in the olivine near the interface between olivine and chromite suggests that Cr in chromite originated from olivine, but the significantly reduced ferrous concentration in the glass surrounding chromite indicates the iron was derived from surrounding impact-induced glass. Based on laboratory observations and simulated calculations of energy and lattice mismatch, we propose that chromite crystallized at the interface between troilite and olivine in the impact melts, during which the nanospheres were lifted up and transported away from olivine surface and form a mushroom-shaped structure. This finding suggests that oriented attachment growth, chiefly confined to homogeneous systems thus far, can also take place in heterogeneous systems far from equilibrium, such as that produced by the impacts. It is conceivable that the studied crystallization pathway occurring on the heterogeneous interfaces may have been a common mineralization mode at highly-nonequilibrium conditions.
蘑菇状晶体在月球上生长
过去三十年来,晶体成核和生长方面的研究进展使人们认识到,结晶是通过多种途径进行的,从传统的逐原子模式到基于粒子聚集或无定形转化的非经典模式。在此,我们通过对嫦娥五号任务返回的月球角砾岩的研究,以通过固液界面反应形成的月球铬铁矿为例,介绍一种新的成矿机制。铬铁矿出现在由底部的橄榄石和顶部的纳米球状透辉石和金属铁组成的须状互生结构的中间。对纳米球(包括晶须结构中的纳米球和分散在玻璃中的其他纳米球)的形态观察和尺寸统计表明,纳米相以一致的晶体学取向附着在橄榄石上,可能是通过定向聚集过程形成的。橄榄石与铬铁矿界面附近的橄榄石中铬含量不足,这表明铬铁矿中的铬来源于橄榄石,但铬铁矿周围玻璃中的亚铁浓度显著降低,这表明铁来源于周围的冲击诱导玻璃。根据实验室观察和对能量与晶格错配的模拟计算,我们认为铬铁矿是在冲击熔体中特罗铁矿与橄榄石之间的界面上结晶的,在结晶过程中,纳米球被抬起并运离橄榄石表面,形成蘑菇状结构。这一发现表明,迄今为止主要局限于均质体系的定向附着生长,也可以在远离平衡的异质体系中发生,例如撞击产生的体系。可以想象,所研究的发生在异质界面上的结晶途径可能是高度非平衡条件下的一种常见矿化模式。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
期刊介绍: ACS Applied Bio Materials is an interdisciplinary journal publishing original research covering all aspects of biomaterials and biointerfaces including and beyond the traditional biosensing, biomedical and therapeutic applications. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important bio applications. The journal is specifically interested in work that addresses the relationship between structure and function and assesses the stability and degradation of materials under relevant environmental and biological conditions.
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