Title :
Characterization of the Mixed-Phase States Using Self-Similarity Phenomenon for First-Order Magnetocaloric Metamagnets
Author :
Jin, Yi ; Ghahremani, Mohammadreza ; Gu, Shuo ; Provenzano, Virgil ; Bennett, Lawrence H. ; Torre, Edward Della ; ElBidweihy, Hatem
Author_Institution :
Dept. of Electr. & Comput. Eng., George Washington Univ., Washington, DC, USA
Abstract :
The understanding of how magnetocaloric metamagnets transition near the metamagnetic transition region is profoundly important to fundamental research and the application of near-room temperature magnetic refrigeration. Metamagnetic transition is characterized by field-induced transitions between the ferromagnetic (FM) and the paramagnetic (PM) state at temperatures above the Curie temperature. The metamagnetic region has been experimentally shown to exhibit coexistence of FM and PM phases attributed to the materials´ intrinsically layered crystallographic structures. An analytical characterization approach is proposed to numerically calculate the fractional compositions of the mixed-state phases. The fractional composition state functions for magnetocaloric metamagnets are formulated by utilizing the self-similarity phenomenon within the material´s (∂M/∂T)H curves. This self-similarity is demonstrated by the collapse of the (∂M/∂T)H curves at different field values onto a single scaled curve with low index of dispersion. To study the effectiveness of this new analytical approach, the fractional compositions functions for Gd5Si2Ge2 was evaluated. The calculated Gd5Si2Ge2 fractional composition state functions demonstrate considerable characteristic agreements with previous experimental results. Knowledge of the FM and PM cluster compositions near the metamagnetic region impacts the calculation of Maxwell´s Relation and provides a new numerical perspective for enhancing the magnetocaloric properties via the methods of nano-engineering or chemical substitution processes.
Keywords :
Curie temperature; chemical exchanges; crystal structure; ferromagnetic materials; ferromagnetic-paramagnetic transitions; fractals; gadolinium alloys; germanium alloys; inhomogeneous media; magnetic cooling; magnetic hysteresis; magnetic structure; metal clusters; metamagnetism; nanofabrication; nanomagnetics; nanostructured materials; paramagnetic materials; silicon alloys; Curie temperature; Gd5Si2Ge2; Maxwell relation; chemical substitution processes; ferromagnetic-paramagnetic state; field-induced transitions; first-order magnetocaloric metamagnets; fractional composition state functions; intrinsically layered crystallographic structures; magnetic hysteresis; magnetocaloric metamagnetic transition; mixed-phase states; nanoengineering processes; near-room temperature magnetic refrigeration; self-similarity phenomenon; Compounds; Distance measurement; Frequency modulation; Magnetic hysteresis; Magnetic resonance imaging; Silicon; Gd $_{5}$Si $_{2}$Ge $_{2}$; magnetocaloric effect; metamagnetism; metamagnets; mixed-phase; self-similarity;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2012.2200883