Chemistry Division, Bhabha Atomic Research Centre, Mumbai 400085, India.
Dalton Trans. 2013 Nov 14;42(42):14999-5015. doi: 10.1039/c3dt51823j. Epub 2013 Aug 30.
In this work we report the metastability and the energetics of the phase transitions of three different polymorphs of BiPO4, namely trigonal (Phase-I, space group P3(1)21), monoclinic monazite-type (Phase-II, space group P2(1)/n) and SbPO4-type monoclinic (Phase-III, space group P2(1)/m) from ambient and non-ambient temperature powder XRD and neutron diffraction studies as well as ab initio density functional theory (DFT) calculations. The symmetry ambiguity between P2(1) and P2(1)/m of the high temperature polymorph of BiPO4 has been resolved by a neutron diffraction study. The structure and vibrational properties of these polymorphs of the three polymorphs have also been reported in detail. Total energy calculations have been used to understand the experimentally observed metastable behavior of trigonal and monazite-type BiPO4. Interestingly, all of the three phases were found to coexist after heating a single phasic trigonal BiPO4 to 773 K. The irreversible nature of these phase transitions has been explained by the concepts of the interplay of the structural distortion, molar volume and total energy.
在这项工作中,我们报告了三种不同 BiPO4 多晶型物的亚稳性和相变能,它们分别是三角晶系(相-I,空间群 P3(1)21)、单斜独居石型(相-II,空间群 P2(1)/n)和 SbPO4 型单斜(相-III,空间群 P2(1)/m)。我们通过环境和非环境温度粉末 XRD 和中子衍射研究以及从头算密度泛函理论(DFT)计算来研究它们。通过中子衍射研究,解决了高温 BiPO4 多晶型物中 P2(1)和 P2(1)/m 之间的对称性歧义问题。我们还详细报道了这三种多晶型物的结构和振动性质。通过总能量计算,我们理解了实验观测到的三角晶和独居石型 BiPO4 的亚稳行为。有趣的是,在将单相三角 BiPO4 加热至 773 K 后,发现所有三种相都共存。通过结构变形、摩尔体积和总能量相互作用的概念,解释了这些相变的不可逆性质。