Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/8162
Title: Strain-mediated effects of oxygen deficiency and variation in non-Fermi liquid behavior of epitaxial PrNiO 3-δ thin films
Authors: Saseendra, Harisankar
Soni, Kavita
Yadav, Ekta
Mavani, Krushna R.
Keywords: Electronic properties;Fermi liquids;Fermions;Lattice mismatch;Liquids;Metal insulator boundaries;Nickel compounds;Oxygen;Perovskite;Perovskite solar cells;Praseodymium compounds;Pulsed laser deposition;Single crystals;Stoichiometry;Strontium titanates;Tensile strain;Metal insulators;Non-Fermi liquids;Non-Fermi-liquid behavior;Oxygen partial pressure;Oxygen stoichiometry;PrNiO3;RNiO3;Single crystal wafers;Thin films
Issue Date: 2019
Publisher: Institute of Physics Publishing
Citation: Harisankar, S., Soni, K., Yadav, E., & Mavani, K. R. (2019). Strain-mediated effects of oxygen deficiency and variation in non-fermi liquid behavior of epitaxial PrNiO 3-δ thin films. Journal of Physics Condensed Matter, 31(13) doi:10.1088/1361-648X/aafd66
Abstract: To understand the effects of oxygen variation in combination with different strains in perovskite nickelates, three sets of PrNiO 3-δ thin films S 1 , S 2 and S 3 were deposited on (0 0 1) oriented single-crystal wafers of SrTiO 3 , LSAT [(LaAlO 3 ) 0.3 (Sr 2 TaAlO 6 ) 0.7 ] and LaAlO 3 , respectively. Two sets of films, S 1 and S 2 , have tensile strain whereas the films of S 3 show compressive strain. For each set, two thin films of fixed thickness (5 nm) were deposited; one film was annealed in situ in oxygen partial pressure just after deposition, the other film was not annealed. The difference in oxygen stoichiometry caused a different state of epitaxial strain in the films. So, the strain was induced in the films due to lattice mismatch with substrate, which modified due to oxygen deficiency. These films show non-Fermi liquid (NFL) behavior in the metallic state. The fitting parameters to power-law equation show a systematic tuning of NFL fitting parameters because of variations in strain. Our results show that not only lattice mismatch induced strain, but also oxygen stoichiometry are crucial parameters in changing the state of strain and hence the NFL behavior and electronic properties of perovskite nickelates. © 2019 IOP Publishing Ltd.
URI: https://doi.org/10.1088/1361-648X/aafd66
https://dspace.iiti.ac.in/handle/123456789/8162
ISSN: 0953-8984
Type of Material: Journal Article
Appears in Collections:Department of Physics

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