(420t) Sonolytic Synthesis of Single and Binary, Metal-Based Magnetic Nanostructured Materials | AIChE

(420t) Sonolytic Synthesis of Single and Binary, Metal-Based Magnetic Nanostructured Materials

Authors 

Moore, G. L. - Presenter, North Carolina A&T State University
Roberts, K. L. - Presenter, North Carolina A&T State University
Kumar, D. - Presenter, North Carolina A&T State University


Magnetic nanomaterials were synthesized using sonolytic techniques. Single metal- and binary-based nanostructured materials with various morphologies and magnetic properties were produced via sonochemical reactions with NH3OH solutions and iron, magnesium and calcium chlorides. All magnetic nanomaterial products were characterized using x-ray diffraction (XRD), elemental analysis, scanning and transmission electron microscopies (SEM and TEM) and superconducting quantum interference device (SQUID) magnetometric analysis. Morphology and crystallite product sizes varied with the metal components, solution composition, and pH level.  Crystallite sizes were observed to range from 5.92 to 72.13 nm. Various nanostructured products were observed to include nanoparticles, nanocrystallites, nanorods, microcubics and microdiscoids. 

Magnetic data for sonolitically altered mixtures and alloyed materials were also measured in this work.  Ultrasonic irradiation provided an effective pathway for the synthesis of the magnetic nanomaterials through redox reaction with metal chlorides and NH3OH.  The data revealed magnetic properties for all solid systems.  Mg(OH)2 and CaCO3-based systems displayed an agreement with properties that coincided with superparamagnetic properties, where the plot of the magnetic field divided by the system temperature collapsed respectively.   Mg(OH)2 + Fe(OH)3 system revealed an agreement with paramagnetic properties, meaning that the graph denoted that under applied field the magnetic moment was observed to be linear with a positive slope.  As for, Fe3O4 + CaCO3 mixtures, MgFe2O3 and Fe3O4 under applied magnetic field indicated a ferromagnetic hysteresis plot, meaning that the particles retained magnetic field after saturation.  A coercivity study was performed to determine the intensity of an applied magnetic field to reduce the magnetization of the particles to zero for the ferromagnetic structures and this study showed a linear decline as temperature increased.  It was also observed that MgFe2O3 required the highest magnetic field to reduce magnetization to zero.