Pal Arkadeb, Singh Prajyoti, Gangwar V K, Joshi Amish G, Khuntia P, Dwivedi G D, Gupta Prince K, Alam Mohd, Anand Khyati, Sethupathi K, Ghosh Anup K, Chatterjee Sandip
Department of physics, Indian Institute of Technology (BHU) Varanasi, India. Department of physics, Indian Institute of Technology, Madras, India.
J Phys Condens Matter. 2020 May 13;32(21):215801. doi: 10.1088/1361-648X/ab5326.
Crystal, electronic structure, dc and ac magnetization properties of the hole substituted (Sr) and partially B-site disordered double perovskite Pr Sr CoMnO system have been investigated. The XRD pattern analysis showed a systematic decrease in the lattice parameters owing to the enhanced oxidation states of the Co/Mn ions. The electronic structure study by XPS measurements suggested the presence of mixed valence states of the B-site ions (Co /Co and Mn /Mn) with significant enhancement of the average oxidation states due to hole doping. The mere absence of electronic states near the Fermi level in the valence band (VB) spectra for both pure (x = 0.0) and Sr doped (x = 0.5) systems indicated the insulating nature of the samples. Sr substitution is observed to increase the spectral weight near the Fermi level suggesting for an enhanced conductivity of the hole doped system. The dc magnetization data divulged a Griffiths like phase above the long-range ordering temperature. A typical re-entrant spin glass like phase driven by the inherent anti-site disorder (ASD) has been recognized by ac susceptibility study for both the pure and doped systems. Most interestingly, the emergence of a new cluster glass like phase (immediately below the magnetic ordering temperature and above the spin-glass transition temperature) solely driven by the Sr substitution has been unravelled by ac magnetization dynamics study. Observation of these dual glassy states in a single system is scarce and hence placed the present system amongst the rare materials. The isothermal magnetization measurements further probed the exhibition of the giant exchange bias effect originated from the interfacial exchange interactions due to existence of low temperature antiferromagnetic clusters embedded in the glassy matrix.
研究了空穴取代(Sr)和部分B位无序的双钙钛矿PrSrCoMnO体系的晶体结构、电子结构、直流和交流磁化特性。XRD图谱分析表明,由于Co/Mn离子氧化态的增强,晶格参数系统性降低。通过XPS测量进行的电子结构研究表明,B位离子(Co³⁺/Co²⁺和Mn⁴⁺/Mn³⁺)存在混合价态,且由于空穴掺杂,平均氧化态显著增强。纯(x = 0.0)和Sr掺杂(x = 0.5)体系的价带(VB)光谱中费米能级附近均不存在电子态,这表明样品具有绝缘性质。观察到Sr取代会增加费米能级附近的光谱权重,这表明空穴掺杂体系的导电性增强。直流磁化数据揭示了在长程有序温度以上存在类似格里菲斯相。通过对纯体系和掺杂体系的交流磁化率研究,识别出了一种由固有反位无序(ASD)驱动的典型再入自旋玻璃相。最有趣的是,通过交流磁化动力学研究揭示了仅由Sr取代驱动的一种新的簇玻璃相(恰好在磁有序温度以下且在自旋玻璃转变温度以上)的出现。在单一体系中观察到这两种玻璃态的情况很少见,因此该体系属于稀有材料。等温磁化测量进一步探究了由于玻璃态基质中存在低温反铁磁团簇而源于界面交换相互作用的巨交换偏置效应的表现。