Gonzalez-Platas Javier, Lopez-Moreno Sinhue, Bandiello Enrico, Bettinelli Marco, Errandonea Daniel
Departamento de Física, Instituto Universitario de Estudios Avanzados en Física Atómica, Molecular y Fotónica (IUDEA), and MALTA Consolider Team, Universidad de La Laguna, Avenida Astrofísico Fco. Sánchez s/n, La Laguna, Tenerife E-38206, Spain.
CONACYT, Division de Materiales Avanzados, Instituto Potosino de Investigación Cientı́fica y Tecnológica (IPICYT), Camino a la presa San Josë 20155, San Luis Potosí, San Luis Potosí 78216, Mexico.
Inorg Chem. 2020 May 4;59(9):6623-6630. doi: 10.1021/acs.inorgchem.0c00772. Epub 2020 Apr 17.
We have studied the high-pressure behavior of FeVO by means of single-crystal X-ray diffraction (XRD) and density functional theory (DFT) calculations. We have found that the structural sequence of FeVO is different from that previously assumed. In particular, we have discovered a new high-pressure phase at 2.11(4) GPa (FeVO-I'), which was not detected by previous powder XRD studies. We have determined that FeVO, under compression (at room temperature), first transforms at 2.11(4) GPa from the ambient-pressure triclinic structure (FeVO-I) to a second previously unknown triclinic structure (FeVO-I'), which experiences a subsequent phase transition at 4.80(4) GPa to a monoclinic structure (FeVO-II'), which was also previously detected in powder XRD experiments. Single-crystal XRD has enabled these novel findings as well as an accurate determination of the crystal structure of FeVO polymorphs under high-pressure conditions. The crystal structure of all polymorphs has been accurately solved at all measured pressures. The pressure dependence of the unit-cell parameters and polyhedral coordination have been obtained and are discussed. The room-temperature equation of state and the principal axes of the isothermal compressibility tensor of FeVO-I and FeVO-I' have also been determined. The structural phase transition observed here between these two triclinic structures at 2.11(4) GPa implies abrupt coordination polyhedra modifications, including coordination number changes. DFT calculations support the conclusions extracted from our experiments.
我们通过单晶X射线衍射(XRD)和密度泛函理论(DFT)计算研究了FeVO的高压行为。我们发现FeVO的结构序列与先前假设的不同。特别是,我们在2.11(4) GPa发现了一个新的高压相(FeVO-I'),先前的粉末XRD研究未检测到该相。我们确定,FeVO在压缩状态下(室温),首先在2.11(4) GPa从常压三斜结构(FeVO-I)转变为另一种先前未知的三斜结构(FeVO-I'),该结构在4.80(4) GPa经历后续相变,转变为单斜结构(FeVO-II'),该结构先前也在粉末XRD实验中被检测到。单晶XRD促成了这些新发现,并准确测定了高压条件下FeVO多晶型物的晶体结构。在所有测量压力下,所有多晶型物的晶体结构均已精确解析。获得并讨论了晶胞参数和多面体配位的压力依赖性。还确定了FeVO-I和FeVO-I'的室温状态方程以及等温压缩率张量的主轴。此处观察到的这两种三斜结构在2.11(4) GPa之间的结构相变意味着配位多面体的突然变化,包括配位数的变化。DFT计算支持了从我们实验中得出的结论。