Kozlov Sergey M, Demiroglu Ilker, Neyman Konstantin M, Bromley Stefan T
Departament de Química Física and Institut de Química Teòrica i Computacional (IQTCUB), Universitat de Barcelona, 08028 Barcelona, Spain.
Nanoscale. 2015 Mar 14;7(10):4361-6. doi: 10.1039/c4nr07458k.
Experimentally, Ce2O3 films are used to study cerium oxide in its fully or partially reduced state, as present in many applications. We have explored the space of low energy Ce2O3 nanofilms using structure prediction and density functional calculations, yielding more than 30 distinct nanofilm structures. First, our results help to rationalize the roles of thermodynamics and kinetics in the preparation of reduced ceria nanofilms with different bulk crystalline structures (e.g. A-type or bixbyite) depending on the support used. Second, we predict a novel, as yet experimentally unresolved, nanofilm which has a structure that does not correspond to any previously reported bulk A2B3 phase and which has an energetic stability between that of A-type and bixbyite. To assist identification and fabrication of this new Ce2O3 nanofilm we calculate some observable properties and propose supports for its epitaxial growth.
在实验中,Ce2O3薄膜被用于研究处于完全或部分还原状态的氧化铈,这在许多应用中都存在。我们利用结构预测和密度泛函计算探索了低能Ce2O3纳米薄膜的空间,得到了30多种不同的纳米薄膜结构。首先,我们的结果有助于解释热力学和动力学在制备具有不同体相晶体结构(如A型或方铈石型)的还原氧化铈纳米薄膜中所起的作用,这取决于所使用的载体。其次,我们预测了一种新型的、尚未通过实验解析的纳米薄膜,其结构与任何先前报道的体相A2B3相都不对应,并且其能量稳定性介于A型和方铈石型之间。为了帮助识别和制备这种新的Ce2O3纳米薄膜,我们计算了一些可观测的性质,并提出了其外延生长的载体。