Niu Haiyang, Oganov Artem R, Chen Xing-Qiu, Li Dianzhong
Moscow Institute of Physics and Technology, 9 Institutskiy Lane, Dolgoprudny city, Moscow Region 141700, Russia.
Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China.
Sci Rep. 2015 Dec 22;5:18347. doi: 10.1038/srep18347.
The Mg-Si-O system is the major Earth and rocky planet-forming system. Here, through quantum variable-composition evolutionary structure explorations, we have discovered several unexpected stable binary and ternary compounds in the Mg-Si-O system. Besides the well-known SiO2 phases, we have found two extraordinary silicon oxides, SiO3 and SiO, which become stable at pressures above 0.51 TPa and 1.89 TPa, respectively. In the Mg-O system, we have found one new compound, MgO3, which becomes stable at 0.89 TPa. We find that not only the (MgO)x · (SiO2)y compounds, but also two (MgO3)x · (SiO3)y compounds, MgSi3O12 and MgSiO6, have stability fields above 2.41 TPa and 2.95 TPa, respectively. The highly oxidized MgSi3O12 can form in deep mantles of mega-Earths with masses above 20 M⊕ (M⊕:Earth's mass). Furthermore, the dissociation pathways of pPv-MgSiO3 are also clarified, and found to be different at low and high temperatures. The low-temperature pathway is MgSiO3 ⇒ Mg2SiO4 + MgSi2O5 ⇒ SiO2 + Mg2SiO4 ⇒ MgO + SiO2, while the high-temperature pathway is MgSiO3 ⇒ Mg2SiO4 + MgSi2O5 ⇒ MgO + MgSi2O5 ⇒ MgO + SiO2. Present results are relevant for models of the internal structure of giant exoplanets, and for understanding the high-pressure behavior of materials.
镁 - 硅 - 氧体系是地球和岩石行星形成的主要体系。在此,通过量子可变组成演化结构探索,我们在镁 - 硅 - 氧体系中发现了几种意想不到的稳定二元和三元化合物。除了众所周知的二氧化硅相,我们还发现了两种特殊的硅氧化物,SiO₃ 和 SiO,它们分别在高于0.51太帕和1.89太帕的压力下变得稳定。在镁 - 氧体系中,我们发现了一种新化合物MgO₃,它在0.89太帕时变得稳定。我们发现不仅(MgO)x·(SiO₂)y化合物,而且两种(MgO₃)x·(SiO₃)y化合物MgSi₃O₁₂和MgSiO₆,分别在高于2.41太帕和2.95太帕时有稳定区域。高度氧化的MgSi₃O₁₂可以在质量超过20个地球质量(M⊕:地球质量)的超级地球的深部地幔中形成。此外,还阐明了pPv - MgSiO₃的解离途径,并且发现其在低温和高温下有所不同。低温途径是MgSiO₃⇒Mg₂SiO₄ + MgSi₂O₅⇒SiO₂ + Mg₂SiO₄⇒MgO + SiO₂,而高温途径是MgSiO₃⇒Mg₂SiO₄ + MgSi₂O₅⇒MgO + MgSi₂O₅⇒MgO + SiO₂。目前的结果与巨型系外行星内部结构模型相关,并且对于理解材料的高压行为具有重要意义。