Chhillar S, Mukherjee K, Yadav C S
School of Basic Sciences, Indian Institute of Technology Mandi, Kamand, Mandi-175075 (H.P.), India.
J Phys Condens Matter. 2022 Jan 28;34(14). doi: 10.1088/1361-648X/ac4a57.
The 6H-perovskites BaRRuO(R = rare earth element) demonstrate the magnetodielectric (MD) coupling as a manifestation of 4-4magnetic interactions. Here, a detailed study of the structural, magnetic, heat capacity, and MD properties of the 6H-perovskite BaGdRuOis reported. The signature of long-range antiferromagnetic (AFM) ordering ∼14.8 K () is evident from the magnetization and heat capacity studies. Theshifts towards the lower temperature side, apart from splitting in two with the application of the magnetic field. Field-dependent magnetization at 2 K shows three metamagnetic transitions with the opening of small hysteresis in different regions. A new transition atemerges after the onset of the first metamagnetic transition. Complex magnetic behavior is observed in different magnetic field regions whereas these field regions themselves vary with the temperature. Dielectric response recorded at zero and 80 kOe field exhibits the development of MD coupling well above. The MD coupling (∼4.5% at 10 K) is enhanced by 25% as compared to the Dy counterpart. Effect of complex magnetic behavior is also conveyed in the MD results where the maximum value of MD coupling is observed in the vicinity of 10 K (onset of) and near the second metamagnetic transition. Our investigation suggests that both Gd and Ru moments align simultaneously at. Short-range magnetic ordering is possibly responsible for MD coupling above.
6H 钙钛矿 BaRRuO(R = 稀土元素)表现出磁电(MD)耦合,这是 4-4 磁相互作用的一种表现形式。在此,报告了对 6H 钙钛矿 BaGdRuO 的结构、磁性、热容量和 MD 性质的详细研究。从磁化强度和热容量研究中可以明显看出,在约 14.8 K()处存在长程反铁磁(AFM)有序的特征。除了在施加磁场时分裂为两个峰外,还向低温侧移动。2 K 时的场依赖磁化强度显示出三个变磁转变,在不同区域出现小的磁滞。在第一次变磁转变开始后,在出现了一个新的转变。在不同的磁场区域观察到复杂的磁行为,而这些磁场区域本身会随温度变化。在零场和 80 kOe 场下记录的介电响应表明,在远高于该温度时 MD 耦合就已发展。与 Dy 对应物相比,MD 耦合(在 10 K 时约为 4.5%)增强了 25%。复杂磁行为的影响也在 MD 结果中体现出来,其中在 10 K 附近(的开始)和第二次变磁转变附近观察到 MD 耦合的最大值。我们的研究表明,Gd 和 Ru 磁矩在时同时排列。短程磁有序可能是上述 MD 耦合的原因。