Peng Feng, Song Xianqi, Liu Chang, Li Quan, Miao Maosheng, Chen Changfeng, Ma Yanming
College of Physics and Electronic Information & Henan Key Laboratory of Electromagnetic Transformation and Detection, Luoyang Normal University, 471022, Luoyang, China.
Department of Chemistry and Biochemistry, California State University Northridge, Northridge, CA, 91330-8262, USA.
Nat Commun. 2020 Oct 16;11(1):5227. doi: 10.1038/s41467-020-19107-y.
An enduring geological mystery concerns the missing xenon problem, referring to the abnormally low concentration of xenon compared to other noble gases in Earth's atmosphere. Identifying mantle minerals that can capture and stabilize xenon has been a great challenge in materials physics and xenon chemistry. Here, using an advanced crystal structure search algorithm in conjunction with first-principles calculations we find reactions of xenon with recently discovered iron peroxide FeO, forming robust xenon-iron oxides XeFeO and XeFeO with significant Xe-O bonding in a wide range of pressure-temperature conditions corresponding to vast regions in Earth's lower mantle. Calculated mass density and sound velocities validate Xe-Fe oxides as viable lower-mantle constituents. Meanwhile, Fe oxides do not react with Kr, Ar and Ne. It means that if Xe exists in the lower mantle at the same pressures as FeO, xenon-iron oxides are predicted as potential Xe hosts in Earth's lower mantle and could provide the repository for the atmosphere's missing Xe. These findings establish robust materials basis, formation mechanism, and geological viability of these Xe-Fe oxides, which advance fundamental knowledge for understanding xenon chemistry and physics mechanisms for the possible deep-Earth Xe reservoir.
一个长期存在的地质谜团涉及到氙缺失问题,即与地球大气中的其他惰性气体相比,氙的浓度异常低。确定能够捕获并稳定氙的地幔矿物,一直是材料物理学和氙化学领域的巨大挑战。在这里,我们结合先进的晶体结构搜索算法和第一性原理计算,发现氙与最近发现的过氧化铁FeO发生反应,在对应于地球下地幔广大区域的广泛压力 - 温度条件下,形成具有显著Xe - O键的稳定氙铁氧化物XeFeO和XeFeO。计算得到的质量密度和声速证实了Xe - Fe氧化物是可行的下地幔成分。同时,铁氧化物不与氪、氩和氖发生反应。这意味着,如果氙在与FeO相同的压力下存在于下地幔中,氙铁氧化物被预测为地球下地幔中潜在的氙宿主,并可能为大气中缺失的氙提供储存库。这些发现确立了这些Xe - Fe氧化物的稳固材料基础、形成机制和地质可行性,推动了对氙化学以及可能的地球深部氙储库物理机制的基础知识的理解。