Bisht Priyanka, Mahato Rabindra Nath
School of Physical Sciences, Jawaharlal Nehru University, New Delhi 110067, India.
J Phys Condens Matter. 2023 Aug 31;35(47). doi: 10.1088/1361-648X/acf01a.
Here in, we report structural, magnetic, and magneto-transport properties of nanocrystalline LaAgBiMnOprepared using citrate sol-gel method. By using scanning and transmission electron microscopy measurements, the morphology and particle size of the sample have been confirmed. The Mn2p x-ray photoelectron spectroscopy spectra revealed the nanoparticles contained the coexistence of Mnand Mnions with MnMnratio of 2:1. Field-cooled and zero field-cooled magnetization protocols with temperature span of 5 K-300 K, confirm the paramagnetic (PM) to ferromagnetic (FM) phase transition at critical temperature,TC∼ 146 K. The complete investigation of isothermal magnetization (130⩽T (K)⩽160,ΔT=2 K), Arrott plots, and magnetocaloric effect as well as quantitative analysis of second-order phase transition has been studied. The criticality at the PM-FM transition was examined for the sample, and the obtained critical exponents were verified for their reliability through the utilization of the scaling hypothesis and Kouvel-Fisher plot. We observed a large magnetic entropy change (∼7 J-KgK) atTCupon 5 T magnetic field strength. The renormalized magnetic entropy change plots are found to collapse onto a single curve, thus verifying the universality of the sample. Above the metal-insulator transitions the electrical resistivity shows a small polaron hopping conduction mechanism, however, at low temperatures scattering mechanism dominates and the whole range was explained by the universal percolation model. The colossal value of negative MR is found to be 88% at 168 K under an applied field strength of 2 T. As a result of our experimental data, we can grasp the intuitive understanding of magnetic as well as transport properties in Bi-doped manganite systems potential for magnetic sensors and spintronics applications.
在此,我们报告了采用柠檬酸盐溶胶 - 凝胶法制备的纳米晶LaAgBiMnO的结构、磁性和磁输运性质。通过扫描和透射电子显微镜测量,确定了样品的形貌和粒径。Mn2p X射线光电子能谱表明,纳米颗粒中Mn和Mn离子共存,Mn:Mn比例为2:1。在5 K - 300 K的温度范围内进行场冷和零场冷磁化实验,证实了在临界温度TC ∼ 146 K时从顺磁(PM)到铁磁(FM)的相变。对等温磁化(130⩽T (K)⩽160,ΔT = 2 K)、阿罗特图、磁热效应以及二级相变的定量分析进行了全面研究。对样品在PM - FM转变处的临界性进行了研究,并通过标度假设和库维尔 - 费舍尔图验证了所获得的临界指数的可靠性。我们观察到在5 T磁场强度下,TC处有较大的磁熵变(∼7 J·Kg⁻¹·K⁻¹)。发现重整化磁熵变图汇聚到一条单一曲线上,从而验证了样品的普适性。在金属 - 绝缘体转变以上,电阻率显示出小极化子跳跃传导机制,然而,在低温下散射机制占主导,整个范围由通用渗流模型解释。在2 T的外加磁场强度下,168 K时负磁阻的巨大值为88%。基于我们的实验数据,我们可以直观地理解Bi掺杂锰氧化物系统中的磁性和输运性质,其在磁传感器和自旋电子学应用方面具有潜力。