Title :
Effect of Ru-Doping on Magnetocaloric Effect in Pr Based Charge Ordered Manganites
Author :
Kumar, V. Suresh ; Mahendiran, Ramanathan ; Raveau, Bernard
Author_Institution :
Dept. of Phys. & Nanosci. & Nanotechnol. Initiative, Nat. Univ. of Singapore, Singapore, Singapore
fDate :
6/1/2010 12:00:00 AM
Abstract :
It is shown that charge-orbital ordered antiferromagnetic state of the parent compound (x = 0) in Pr0.5Ca0.5Mn1-xRuxO3 series is destabilized and ferromagnetism is induced by Ru doping, as small as 3%, at the Mn site. The ferromagnetic transition temperature (TC) increases with Ru content from TC = 213 K for x = 0.03 to 239 K for x = 0.1 but the field dependence of magnetization does not show metamagnetic transition above or below TC unlike Pr0.5Ca0.5Mn1-xRuxO3. The change in magnetic entropy (¿SM) is the largest for x = 0.03 (¿SM = -4.2 J/kg K at 213 K for ¿H = 5 T) and decreases with increasing Ru content (¿SM = -3.8 J/kg K at 221K and -3.4 J/kg K at 239 K for ¿H = 5 T, for x = 0.05 and 0.10, respectively). However, the relative cooling power increases with Ru content from 284.9 J/kg for x = 0.03 to 303.6 J/kg for x = 0.1. The large magnetic entropy change found in x = 0.03 and the absence of high field hysteresis in M-H curves make the Ru-doped samples suitable candidates for magnetic refrigeration.
Keywords :
antiferromagnetism; calcium compounds; doping; ferromagnetism; magnetic hysteresis; magnetic transition temperature; magnetocaloric effects; manganese compounds; praseodymium compounds; Pr0.5Ca0.5Mn1-xRuxO3; antiferromagnetic state; charge-orbital ordered; ferromagnetic transition temperature; high field hysteresis; magnetic entropy; magnetic refrigeration; magnetocaloric effect; metamagnetic transition; praseodymium based charge ordered manganites; ruthenium doping; temperature 213 K; temperature 239 K; Antiferromagnetic materials; Colossal magnetoresistance; Cooling; Costs; Entropy; Magnetic materials; Neodymium; Paramagnetic materials; Refrigeration; Temperature; Colossal magnetoresistance; magnetic refrigeration; magnetocaloric effect; manganites; phase transition;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2010.2044754