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Structure-Curie temperature relationships in BaTiO3-based ferroelectric perovskites: Anomalous behavior of (Ba,Cd)TiO3 from DFT, statistical inference, and experiments

机译:BaTiO3基铁电钙钛矿中的结构-居里温度关系:DFT中(Ba,Cd)TiO3的反常行为,统计推论和实验

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One of the key impediments to the development of BaTiO3-based materials as candidates to replace toxic-Pb-based solid solutions is their relatively low ferroelectric Curie temperature (T-C). Among many potential routes that are available to modify T-C, ionic substitutions at the Ba and Ti sites remain the most common approach. Here, we perform density functional theory (DFT) calculations on a series of ATiO(3) and BaBO3 perovskites, where A = Ba, Ca, Sr, Pb, Cd, Sn, and Mg and B = Ti, Zr, Hf, and Sn. Our objective is to study the relative role of A and B cations in impacting the T-C of the tetragonal (P4mm) and rhombohedral (R3m) ferroelectric phases in BaTiO3-based solid solutions, respectively. Using symmetry-mode analysis, we obtain a quantitative description of the relative contributions of various divalent (A) and tetravalent (B) cations to the ferroelectric distortions. Our results show that Ca, Pb, Cd, Sn, and Mg have large mode amplitudes for ferroelectric distortion in the tetragonal phase relative to Ba, whereas Sr suppresses the distortions. On the other hand, Zr, Hf, and Sn tetravalent cations severely suppress the ferroelectric distortion in the rhombohedral phase relative to Ti. In addition to symmetry modes, our calculated unit-cell volume also agrees with the experimental trends. We subsequently utilize the symmetry modes and unit-cell volumes as features within a machine learning approach to learn T-C via an inference model and uncover trends that provide insights into the design of new high-T-C BaTiO3-based ferroelectrics. The inference model predicts CdTiO3-BaTiO3 solid solutions to have a higher TC and, therefore, we experimentally synthesized these solid solutions and measured their T-C. Although the calculated mode strength for CdTiO3 in the tetragonal phase is even larger than that for PbTiO3, the T-C of CdTiO3-BaTiO3 solid solutions in the tetragonal phase does not show any appreciable enhancement. Thus, CdTiO3-BaTiO3 does not follow the inference model, which is based on established data and trends for ATiO(3). Rather, our experimental phase diagram for CdTiO3-BaTiO3 suggests that it behaves markedly differently from any other BaTiO3-based systems studied so far.
机译:作为替代有毒Pb基固溶体的候选材料,BaTiO3基材料发展的主要障碍之一是其相对较低的铁电居里温度(T-C)。在可用于修饰T-C的许多潜在途径中,Ba和Ti位点的离子取代仍然是最常见的方法。在这里,我们对一系列ATiO(3)和BaBO3钙钛矿进行密度泛函理论(DFT)计算,其中A = Ba,Ca,Sr,Pb,Cd,Sn和Mg,B = Ti,Zr,Hf和锡我们的目的是研究在基于BaTiO3的固溶体中A和B阳离子分别影响四方(P4mm)和菱形(R3m)铁电相的T-C的相对作用。使用对称模式分析,我们获得了各种二价(A)和四价(B)阳离子对铁电畸变的相对贡献的定量描述。我们的结果表明,相对于Ba,Ca,Pb,Cd,Sn和Mg在四方相中的铁电畸变具有较大的模振幅,而Sr抑制了畸变。另一方面,相对于Ti,Zr,Hf和Sn四价阳离子严重抑制了菱面体相中的铁电畸变。除了对称模式,我们计算的单位细胞体积也符合实验趋势。随后,我们将对称模式和单位晶胞体积作为机器学习方法的功能,通过推理模型学习T-C,并发现趋势,这些趋势可为新型高T-C BaTiO3基铁电体的设计提供见识。推论模型预测CdTiO3-BaTiO3固溶体具有更高的TC,因此,我们通过实验合成了这些固溶体并测量了它们的T-C。尽管四方相中CdTiO3的计算模态强度甚至比PbTiO3大,但四方相中CdTiO3-BaTiO3固溶体的T-C值没有显示任何明显的提高。因此,CdTiO3-BaTiO3不遵循推断模型,该模型基于已建立的ATiO(3)数据和趋势。相反,我们对CdTiO3-BaTiO3的实验相图表明,它的行为与迄今为止研究的任何其他基于BaTiO3的系统明显不同。

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