TY - JOUR
T1 - Structural, dielectric, and magnetic properties of transition metals substituted strontium aluminates for energy storage applications
AU - Ullah, Farman
AU - Ahmad, Pervaiz
AU - Khandaker, Mayeen Uddin
AU - Shahabuddin, Mohammed
AU - Ramay, Shahid M.
AU - Saleem, Murtaza
PY - 2024/4
Y1 - 2024/4
N2 - Group-II aluminates have a spinel structure widely used for energy storage purposes due to high thermal, chemical, and dielectric properties. These applications can be enhanced by the substitution of a small content of magnetic transition metals. In this study, MxSr1-xAl2O4 (where M = Mn, Fe, and Co and x = 0.1) compositions were successfully synthesized via a well-known hydrothermal technique. The uniform nano-sized sheets with the monoclinic structure without any impurity phase were confirmed by X-ray diffraction and field emission electron microscopy analysis. The qualitative and quantitative analysis studies reveal the presence of expected elements with their respective wt.% ratio observed through energy dispersive spectroscopy analysis. A clear non-magnetic and paramagnetic behavior with high saturation and remnant magnetization was observed from the M-H loop at room temperature for pure and transition metal (Mn, Fe, and Co) substituted Sr-aluminate samples. The highest values Ms, Mr, and Hc, i.e., 0.020 emu center dot g-1, 0.005 emu center dot g-1, and 0.026Oe are recorded for Co-doped SrAl2O4 composition. The dielectric studies reveal an increase in the value of the dielectric constant and a decrease in energy loss factor from 0.27 to 0.18 confirming the stability of the structure, and enhancement in ferroelectric parameters making these suitable candidates for energy storage applications.
AB - Group-II aluminates have a spinel structure widely used for energy storage purposes due to high thermal, chemical, and dielectric properties. These applications can be enhanced by the substitution of a small content of magnetic transition metals. In this study, MxSr1-xAl2O4 (where M = Mn, Fe, and Co and x = 0.1) compositions were successfully synthesized via a well-known hydrothermal technique. The uniform nano-sized sheets with the monoclinic structure without any impurity phase were confirmed by X-ray diffraction and field emission electron microscopy analysis. The qualitative and quantitative analysis studies reveal the presence of expected elements with their respective wt.% ratio observed through energy dispersive spectroscopy analysis. A clear non-magnetic and paramagnetic behavior with high saturation and remnant magnetization was observed from the M-H loop at room temperature for pure and transition metal (Mn, Fe, and Co) substituted Sr-aluminate samples. The highest values Ms, Mr, and Hc, i.e., 0.020 emu center dot g-1, 0.005 emu center dot g-1, and 0.026Oe are recorded for Co-doped SrAl2O4 composition. The dielectric studies reveal an increase in the value of the dielectric constant and a decrease in energy loss factor from 0.27 to 0.18 confirming the stability of the structure, and enhancement in ferroelectric parameters making these suitable candidates for energy storage applications.
KW - Dielectric properties
KW - Magnetic properties
KW - Strontium aluminates
KW - Structural properties
UR - https://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=fahdahdrgs&SrcAuth=WosAPI&KeyUT=WOS:001156365900001&DestLinkType=FullRecord&DestApp=WOS_CPL
U2 - 10.1007/s41779-024-00997-w
DO - 10.1007/s41779-024-00997-w
M3 - Article
SN - 2510-1560
VL - 60
SP - 377
EP - 383
JO - Journal of the Australian Ceramic Society
JF - Journal of the Australian Ceramic Society
IS - 2
ER -