Institute of Fundamental Education, Ural Federal University, Ekaterinburg, Russia.
Phys Chem Chem Phys. 2023 Jun 21;25(24):16354-16362. doi: 10.1039/d3cp01383a.
The structural and vibrational properties of the ZnO wurtzite phase with oxygen vacancies in different charged states are studied using first-principles and potential-based methods. The calculations based on density-functional theory are performed to determine the atomic configurations around defects. The DFT results are discussed and compared with those obtained using the static lattice method in the traditional shell model. Both computational approaches predict the same character of crystal lattice relaxation around oxygen vacancies. The phonon local symmetrized densities of states are calculated using the Green function method. The frequencies of localized vibrations of various symmetry types induced by oxygen vacancies in neutral and positively charged states are determined. The calculation results allow estimating the effect of oxygen vacancies on the formation of the intense Raman peak.
采用第一性原理和基于势的方法研究了不同带电状态下 ZnO 纤锌矿相中的氧空位的结构和振动特性。基于密度泛函理论的计算用于确定缺陷周围的原子构型。讨论了 DFT 结果,并与传统壳模型中基于静态晶格方法的结果进行了比较。两种计算方法都预测了氧空位周围晶体晶格弛豫的相同特征。使用格林函数方法计算了声子局部对称化态密度。确定了中性和正电荷状态下氧空位引起的各种对称类型的局域振动频率。计算结果允许估计氧空位对形成强拉曼峰的影响。