We have demonstrated that the La(Fe,Si)(13) magnetocaloric phase can be directly formed from molten on extremely slow cooling by the employment of directional solidification technique. A large amount of this magnetocaloric phase of about 85% was achieved in the as-solidified state with a cooling rate of 0.005 K/s. A large magnetic entropy change of 13.5 J/kg K under an applied field of 2 T was obtained at 202 K for the LaFe11.6Si1.4 composition without post-annealing processing. (C) 2017 Elsevier B.V. All rights reserved
The melt-spun ribbons of LaFe11.5Si1.5Cx (x = 0, 0.1, 0.2, 0.3) compounds are prepared by the melt f...
We report on the influence of the Co content in the magnetocaloric system La(Fe,Si,Co)13 on the ther...
Magnetic entropy change DeltaS of compounds La(Fe1-xCox)(11.2)Si-1.8 with the cubic NaZn13-type stru...
Direct formation of the La(Fe, Si)(13) phase has been realized by extremely slow cooling in directio...
La(Fe,Si)(13)-based alloys are considered to be one of the most promising magnetocaloric materials f...
We report on the microstructure, phase constitution and magnetocaloric properties in rapidly solidif...
We report on the microstructure, phase constitution and magnetocaloric properties in rapidly solidif...
In the present work we reported the phase formation, microstructure, magnetocaloric effect and hydro...
Flake-like LaFe11.8-xCoxSi1.2 alloys were successfully prepared in kilogram quantities by a strip-ca...
In recent years, magnetocaloric materials have been extensively studied as materials for use in alte...
La(Fe,Si)13-based compounds are extremely promising for use in magnetocaloric cooling applications. ...
The influence of Pr content on structure, magnetic properties, and magnetic entropy changes of La1-x...
In this work, we study the effect of Ni substitution on the magnetocaloric properties of La(Fe,Si)13...
LaFe13-xSix compounds with x=2.4, 2.6, and 2.8 have been carefully prepared and characterized. X-ray...
Composites of two magnetocaloric components have been prepared by melt spinning. A special nozzle mo...
The melt-spun ribbons of LaFe11.5Si1.5Cx (x = 0, 0.1, 0.2, 0.3) compounds are prepared by the melt f...
We report on the influence of the Co content in the magnetocaloric system La(Fe,Si,Co)13 on the ther...
Magnetic entropy change DeltaS of compounds La(Fe1-xCox)(11.2)Si-1.8 with the cubic NaZn13-type stru...
Direct formation of the La(Fe, Si)(13) phase has been realized by extremely slow cooling in directio...
La(Fe,Si)(13)-based alloys are considered to be one of the most promising magnetocaloric materials f...
We report on the microstructure, phase constitution and magnetocaloric properties in rapidly solidif...
We report on the microstructure, phase constitution and magnetocaloric properties in rapidly solidif...
In the present work we reported the phase formation, microstructure, magnetocaloric effect and hydro...
Flake-like LaFe11.8-xCoxSi1.2 alloys were successfully prepared in kilogram quantities by a strip-ca...
In recent years, magnetocaloric materials have been extensively studied as materials for use in alte...
La(Fe,Si)13-based compounds are extremely promising for use in magnetocaloric cooling applications. ...
The influence of Pr content on structure, magnetic properties, and magnetic entropy changes of La1-x...
In this work, we study the effect of Ni substitution on the magnetocaloric properties of La(Fe,Si)13...
LaFe13-xSix compounds with x=2.4, 2.6, and 2.8 have been carefully prepared and characterized. X-ray...
Composites of two magnetocaloric components have been prepared by melt spinning. A special nozzle mo...
The melt-spun ribbons of LaFe11.5Si1.5Cx (x = 0, 0.1, 0.2, 0.3) compounds are prepared by the melt f...
We report on the influence of the Co content in the magnetocaloric system La(Fe,Si,Co)13 on the ther...
Magnetic entropy change DeltaS of compounds La(Fe1-xCox)(11.2)Si-1.8 with the cubic NaZn13-type stru...