4.7 Article

Influence of post-annealing, defect chemistry and high pressure on the magnetocaloric effect of non-stoichiometric La0.8-xK0.2Mn1+xO3 compounds

Journal

CERAMICS INTERNATIONAL
Volume 47, Issue 17, Pages 24553-24563

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.ceramint.2021.05.174

Keywords

Manganite; Post-annealing; Defect chemistry; Curie temperature; Magnetocaloric effect; High pressure

Funding

  1. Thousand Talents Program for Foreign Experts program of China [WQ20162200339]
  2. NAS of Ukraine [08/01-2021]

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The need for new magnetocaloric materials is urgent due to the requirement to limit harmful emissions and increased need for cooling in life support areas. This study focuses on improving the magnetocaloric properties of La0.8xK0.2Mn1+xO3 perovskites and compares nanocrystalline and polycrystalline samples. The investigations into the structure, morphology, magnetic properties, and magnetocaloric effect show that the properties of these compounds are influenced by the manganese doping level.
In view of the need to limit harmful emissions of chlorofluorocarbons into the atmosphere and sharp increase in life support areas that require cooling, the search for new magnetocaloric materials is very urgent at the present time. In this work, we suggest the ways for improving the magnetocaloric properties of the promising La0.8xK0.2Mn1+xO3 (0 < x < 0.2) perovskites and compare the functional properties of nanocrystalline samples of about 40 nm with polycrystalline samples of about 1 ism. The structure, morphology, magnetic properties and magnetocaloric effect of these compounds were studied as a function of manganese doping level. The main crystalline phase of all samples is a rhombohedral R3c perovskite structure. The maximum doping level of excess manganese for preserving single-phase structure of the nanocrystalline La0.8-xK0.2Mn1+xO3 compounds is x = 0.10. As x increases the Curie temperature TC is increased slightly. The best composition with the highest entropy change Delta SMmax = -3.629 J/(kg.K) under 3 T at TC = 332 K is the La0.8-xK0.2Mn1+xO3 with x = 0.05. On the other hand, the La0.8-xK0.2Mn1+xO3 polycrystalline manganite with x = 0.10 exhibits the highest Delta SMmax = -4.176 J/ (kg.K) under 3 T at TC = 274 K. Additionally, the effect of hydrostatic pressure P up to 1.4 GPa has been investigated for the La0.7K0.2Mn1.1O3 polycrystalline sample that leads to increasing TC to 287 K and reducing Delta SMmax to -3.145 J/(kg.K) under 3 T. The obtained results demonstrate the ways for controlling magnetocaloric properties of the La0.8-xK0.2Mn1+xO3 compounds under internal and external conditions.

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