Comprehensive investigation of structural, magnetic, electronic, optical, mechanical, and piezoelectric properties of ATiO3 (A= Mn, Fe, Ni) compounds for sustainable energy materials.

IF 2.3 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER Journal of Physics: Condensed Matter Pub Date : 2024-08-21 DOI:10.1088/1361-648X/ad7218
Lalhum Hima, Bernard Lalroliana, Lalmuan Chhana, R Zosiamliana, D P Rai, Ramesh Chandra Tiwari, Lalhriat Zuala
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Abstract

This work employs Density Functional Theory (DFT) to investigate the characteristics of ATiO3 (A= Mn, Fe, Ni) by utilizing GGA and DFT+U formalisms. Our results reveal that the investigated compounds exhibit a ground-state magnetic arrangement in the G-type antiferromagnetic configuration. Substitution of the A-site atoms along the row leads to a decrease in volume due to poor electronic shielding effects with transition metals. All systems investigated are stable under dynamical conditions, with no imaginary phonon. From the formation energy calculations, NiTiO3 was identified as the most formable and stable compound. DFT+U was most effective for FeTiO3, resulting in significantly wider bandgaps compared to the GGA-level bandgaps. Optical properties such as static dielectric constants, refractive index, and reflectivity were overestimated by the GGA when compared to DFT+U results. The absorption edges of FeTiO3, MnTiO3, and NiTiO3 were analyzed, with DFT+U showing delayed onset compared to GGA. FeTiO3 was found to be the most effective absorber within the visible spectrum according to DFT+U, while NiTiO3 was predicted to be the best absorber by GGA. Each compound's mechanical stability was tested and verified based on the Born criteria, with FeTiO3 exhibiting the highest elastic moduli under DFT+U, while NiTiO3 had the highest shear and Young's modulus according to GGA. Among the studied compounds, FeTiO3 is the best-performing and most efficient piezoelectric compound with e_16 = 5.418 C m^(-2) under DFT+U. Overall, the studied compounds demonstrate promising capabilities for a wide range of applications in the field of photovoltaic devices, and piezoelectric materials, due to their remarkable optical, and piezoelectric properties.

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全面研究可持续能源材料 ATiO3(A=锰、铁、镍)化合物的结构、磁性、电子、光学、机械和压电特性。
本研究采用密度泛函理论(DFT),利用 GGA 和 DFT+U 形式研究 ATiO3(A=锰、铁、镍)的特性。我们的研究结果表明,所研究的化合物呈现出 G 型反铁磁构型的基态磁性排列。由于过渡金属的电子屏蔽效应较差,沿行取代 A 位原子会导致体积减小。所研究的所有体系在动力学条件下都很稳定,没有虚声子。根据形成能计算,NiTiO3 被确定为最易形成和最稳定的化合物。DFT+U 对 FeTiO3 最有效,与 GGA 级带隙相比,其带隙明显更宽。与 DFT+U 结果相比,GGA 高估了静态介电常数、折射率和反射率等光学特性。分析了 FeTiO3、MnTiO3 和 NiTiO3 的吸收边缘,与 GGA 相比,DFT+U 显示出延迟起始。根据 DFT+U 发现,FeTiO3 是可见光谱内最有效的吸收体,而根据 GGA 预测,NiTiO3 是最好的吸收体。根据 Born 标准对每种化合物的机械稳定性进行了测试和验证,在 DFT+U 下,FeTiO3 表现出最高的弹性模量,而根据 GGA,NiTiO3 具有最高的剪切模量和杨氏模量。在所研究的化合物中,FeTiO3 是性能最好、效率最高的压电化合物,在 DFT+U 下的 e_16 = 5.418 C m^(-2)。总之,所研究的化合物因其显著的光学和压电特性,在光伏设备和压电材料领域的广泛应用中展现出了良好的前景。
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来源期刊
Journal of Physics: Condensed Matter
Journal of Physics: Condensed Matter 物理-物理:凝聚态物理
CiteScore
5.30
自引率
7.40%
发文量
1288
审稿时长
2.1 months
期刊介绍: Journal of Physics: Condensed Matter covers the whole of condensed matter physics including soft condensed matter and nanostructures. Papers may report experimental, theoretical and simulation studies. Note that papers must contain fundamental condensed matter science: papers reporting methods of materials preparation or properties of materials without novel condensed matter content will not be accepted.
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