AI Article Synopsis

  • The MnAlC alloy, which doesn't contain rare earth materials, is being recognized as a promising and affordable option for permanent magnets due to its high anisotropy field, saturation magnetization, and Curie temperature.
  • A simple fabrication method was developed to produce a bulk -MnAlC magnet, utilizing electric arc-melting and a two-step heat treatment to achieve a pure -MnAlC ingot.
  • The resulting -MnAlC showed improved magnetic properties with a remanent magnetization of 42 Am/kg and a maximum energy product of 6.07 kJ/m, surpassing previous results and demonstrating high-quality ferromagnetic behavior.

Article Abstract

The rare-earth-free MnAlC alloy is currently considered a very promising candidate for permanent magnet applications due to its high anisotropy field and relatively high saturation magnetization and Curie temperature, besides being a low-cost material. In this work, we presented a simple fabrication route that allows for obtaining a magnetically enhanced bulk -MnAlC magnet. In the fabrication process, an electric arc-melting method was carried out to melt ingots of MnAlC alloys. A two-step solution treatment at 1200 °C and 1100 °C allowed us to synthesize a pure room-temperature -MnAlC ingot that completely transformed into -MnAlC alloy, free of secondary phases, after an annealing treatment at 550 °C for 30 min. The Rietveld refinements and magnetization measurements demonstrated that the quenched process produces a phase-segregated -MnAlC alloy that is formed by two types of -phases due to local fluctuation of the Mn. Room-temperature hysteresis loops showed that our improved -MnAlC alloy exhibited a remanent magnetization of 42 Am/kg, a coercive field of 0.2 T and a maximum energy product, (BH), of 6.07 kJ/m, which is higher than those reported in previous works using a similar preparation route. Experimental evidence demonstrated that the synthesis of a pure room-temperature -MnAlC played an important role in the suppression of undesirable phases that deteriorate the permanent magnet properties of the -MnAlC. Finally, magnetic images recorded by Lorentz microscopy allowed us to observe the microstructure and magnetic domain walls of the optimized -MnAlC. The presence of magnetic contrasts in all the observed grains allowed us to confirm the high-quality ferromagnetic behavior of the system.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9740269PMC
http://dx.doi.org/10.3390/molecules27238347DOI Listing

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