Chatten Ryan, Chadwick Alan V, Rougier Aline, Lindan Philip J D
Physics Laboratory, School of Physical Sciences, University of Kent, Canterbury CT2 7NR, United Kingdom.
J Phys Chem B. 2005 Mar 3;109(8):3146-56. doi: 10.1021/jp045655r.
The oxygen vacancy in WO(3) has previously been implicated in the electrochromism mechanism in this material. Previous theoretical calculations on the oxygen vacancy in WO(3) have not considered the full range of crystal structures adopted by the material. Here we report studies of the oxygen vacancy in seven crystal phases. The use of a very accurate tungsten plane-wave pseudopotential means that a byproduct of this study is a more detailed and complete picture of undefected WO(3) than previously available. Electronic structures of the crystal phases in both undefected and defected systems have been calculated and are discussed. The band gap in WO(3) is dependent upon bonding-antibonding interactions, these being dependent upon overlap in each direction. The effect of an oxygen vacancy is dependent upon the availability of both Op and Wd electrons, this being different for the various phases. A variety of behavior is predicted, which may be explained in terms of O2p-W5d mixing, including the formation of long W-W dimer bonds. It is found that the nature of a polaron in this material is dependent upon both the crystal structure and distribution of oxygen vacancies.
WO(3) 中的氧空位先前已被认为与该材料的电致变色机制有关。先前对 WO(3) 中氧空位的理论计算并未考虑该材料所采用的全部晶体结构。在此,我们报告了对七个晶相中的氧空位的研究。使用非常精确的钨平面波赝势意味着,这项研究的一个副产品是比以前更详细、更完整的未缺陷 WO(3) 的图像。已计算并讨论了未缺陷和有缺陷系统中晶相的电子结构。WO(3) 中的带隙取决于成键 - 反键相互作用,而这些相互作用又取决于各个方向上的重叠。氧空位的影响取决于 Op 和 Wd 电子的可用性,这在不同相中有所不同。预测了多种行为,这些行为可以用 O2p - W5d 混合来解释,包括形成长的 W - W 二聚体键。研究发现,该材料中极化子的性质取决于晶体结构和氧空位的分布。