Apostolov Angel T, Apostolova Iliana N, Wesselinowa Julia M
Department of Physics, Faculty of Hydrotechnics, University of Architecture, Civil Engineering and Geodesy, Hristo Smirnenski Blvd. 1, 1046 Sofia, Bulgaria.
Faculty of Forest Industry, University of Forestry, Kl. Ohridsky Blvd. 10, 1756 Sofia, Bulgaria.
Materials (Basel). 2024 Aug 30;17(17):4298. doi: 10.3390/ma17174298.
Using a microscopic model and the Green's function theory, the size and co-doping effects on the multiferroic and optical (band gap) properties of BiFeO (BFO) nanoparticles are investigated. The magnetization increases, whereas the band gap energy decreases with decreasing nanoparticle size. The substitution with Co/Mn, Nd/Sm, Ce/Ni, and Cd/Ni is discussed and explained on a microscopic level. By the ion co-doping appear different strains due to the difference between the doping and host ionic radii, which leads to changes in the exchange interaction constants for tuning all properties. It is observed that by co-doping with Nd/Sm at the Bi site or with Co/Mn at the Fe site, the multiferroic properties are larger than those by doping with one ion. Moreover, by doping with Ni, the multiferroic properties are reduced. But by adding another ion (for example Ce or Cd), an increase in these properties is obtained. This shows the advantages of the co-doping, its flexibility, and its greater possibility of tuning the multiferroic properties compared to single ion substitution. The band gap energy decreases for all co-dopants. The polarization increases with increasing magnetic field. This is evidence of magnetoelectric coupling, which is enhanced by co-doping with Co/Mn. The observed theoretical results are in good qualitative agreement with the existing experimental data.
利用微观模型和格林函数理论,研究了尺寸和共掺杂对BiFeO(BFO)纳米颗粒的多铁性和光学(带隙)性质的影响。随着纳米颗粒尺寸减小,磁化强度增加,而带隙能量降低。在微观层面上讨论并解释了用Co/Mn、Nd/Sm、Ce/Ni和Cd/Ni进行的替代。由于掺杂离子与主体离子半径的差异,离子共掺杂会出现不同的应变,这导致用于调节所有性质的交换相互作用常数发生变化。观察到,通过在Bi位与Nd/Sm共掺杂或在Fe位与Co/Mn共掺杂,多铁性性质比单离子掺杂时更大。此外,通过掺杂Ni,多铁性性质降低。但通过添加另一种离子(例如Ce或Cd),这些性质会增加。这显示了共掺杂的优势、其灵活性以及与单离子替代相比在调节多铁性性质方面更大的可能性。所有共掺杂剂都会使带隙能量降低。极化随磁场增加而增大。这是磁电耦合的证据,通过与Co/Mn共掺杂可增强这种耦合。观察到的理论结果与现有的实验数据在定性上吻合良好。