Karen JohnstonXiangyang HuangJeffrey B. NeatonKarin M. Rabe
The crystal structure and local spontaneous polarization of (BaTiO3)m/(SrTiO3)n superlattices is calculated using a first-principles density functional theory method. The in-plane lattice constant is 1% larger than the SrTiO3 substrate to imitate the relaxed superlattice structure and the symmetry is lowered to monoclinic space group Cm which allows polarization to develop along the [110] and [001] directions. The polarization component in the [110] direction is found to develop only in the SrTiO3 layers and falls to zero in the BaTiO3 layers, whereas the polarization in the [001] direction is approximately uniform throughout the superlattice. These findings are consistent with recent experimental data and first-principles results for epitaxially strained BT and ST.
Shafqat Hussain ShahPaul D. BristoweAlexie M. KolpakAndrew M. Rappe
Jun Hee LeeUmesh V. WaghmareJaejun Yu
Leejun KimJuho KimDonggeun JungJaichan LeeUmesh V. Waghmare
J. LindnerF. WeissJ.-P. SénateurW. HaesslerG. KoebernikA. FiguerasJ. Santiso
Zhenye ZhuBiao WangYupeng ZhengHai WangQingkun LiChenliang Li(1)哈尔滨工业大学航天学院,哈尔滨 150001; (2)哈尔滨工业大学航天学院,哈尔滨 150001;中山大学理工学院光电材料和技术国家重点实验室,光电功能复合材料所,广州 510275