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Unravelling the local structure and magnetic dynamics of Cu-doped MnV2O4
Rahul Kumar Yadav1, Manikandan Dhamodaran2, Rajeev Gupta1,3
1Materials Science Programme, Indian Institute of Technology, Kanpur 208016, Uttar Pradesh, India.
Abstract:
The interplay between local structure, electronic structure, and magnetism was investigated in solid-state-synthesized Cu-incorporated MnV2O4. Powder x-ray diffraction measurements were carried out to investigate phase formation and structural evolution with Cu-doping for Cu-doped MnV2O4samples. Systematic reduction in the lattice constant and interatomic bond lengths was observed with Cu doping due to the smaller ionic radii of Cu2+compared to Mn2+. X-ray absorption spectroscopy reveals an increase in the oxidation state of V from ∼3.42 to ∼3.75 with Cu-doping, while the oxidation states of Mn and Cu remain stable at ∼2.05 to ∼2.20 and ∼1.00, respectively. Increased V oxidation state results in a decrease in magnetic moments of V, so overall the weakening of A and B sites magnetic moments due to Cu doping, is responsible for the decrease in magnetic transition temperature of Cu-doped MnV2O4samples. Due to Cu-doping local disorder at the Cu site was stronger, followed by the V site due to nearest neighbour interactions between the Cu-V path, while the Mn site was stable. Density functional calculation shows strong hybridization between V and O, causing charge and spin transfer, while Mn remains localized deep inside the valence band. V-V exchange coupling shows domination, followed by Mn-V exchange coupling, and Mn-Mn exchange coupling remains relatively weak. With Cu-doping, V-V and Mn-V exchange coupling weaken, while Mn-Mn exchange coupling shows slight improvement, indicating new interaction pathways due to Cu-doping.
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