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Updated: May 12, 2025

Synthesis and Characterization of Fe-doped Aluminosilicate Nanotubes with Enhanced Electron Conductive Properties
Published on: November 15, 2016
Strongly emerging octahedral modifications with Al doping and its influence on the electronic transport in NdNiO3thin
Ketan S Navale1, Diptanshu Basak1, Ekta Yadav1
1Department of Physics, Indian Institute of Technology (IIT) Indore, Simrol, Khandwa Road, Indore 453352, India.
Abstract:
The temperature-dependent electronic transport and the metal-insulator transition in ABO3perovskite-type NdNiO3are highly sensitive to chemical substitutions and lattice-mismatch induced strain in thin films. We synthesized two series of NdNi1-AlO3(x= 0-0.50) thin films on LAO (001) single crystal substrates using the pulsed laser deposition technique: one with varied Al doping level (x= 0-0.50) and the other with fixed doping (x= 0.5) but different thickness (10-200 nm). Substituting Al at Ni-site modifies the Ni oxidation state, as observed by x-ray photoelectron spectroscopy. A Raman mode around 693 cm-1emerges with just 2% Al-doping at the Ni-site, which is otherwise absent in undoped NdNiO3film. This mode is associated with an anti-stretching of BO6octahedra in perovskites. With increasing doping, this mode strongly emerges in a dominating manner in the spectra, clearly indicating a further enhancement of octahedral anti-stretching. This mode exhibits a blue shift with increasing Al doping and a red shift with increasing thickness atx= 0.50. Temperature-dependent Raman spectra, analyzed using Balkanski and Grüneisen models, reveal anharmonicity and Red-shifting behaviors. The undoped film shows a metal-to-insulator transition temperature (TMI) of ∼77 K, which systematically increases with greater anti-stretching of octahedra and Al doping. At higher doping levels (x= 0.20 and 0.50), the films show insulating behavior below room temperature. As the thickness of NdNi0.50Al0.50O3films varies from 10 nm to 200 nm, the anti-stretching mode got affected, resulting in systematic decrease in resistivity. Our findings confirm that the anti-stretching mode arises by Al doping, and it is associated with the insulating behavior of Al-doped NdNiO3thin films.
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