研究目的
Investigating the structure, dielectric properties, and energy storage capabilities of low-temperature-sintering BaTiO3-based glass–ceramics for energy storage applications.
研究成果
The addition of BNN glass significantly reduces the sintering temperature and grain size of BTBMN ceramics, improving their dielectric and energy storage properties. Optimal energy storage performance was achieved with 3 wt.% BNN glass addition, demonstrating the potential of BG glass–ceramics for high-temperature capacitors and energy storage applications.
研究不足
The study is limited by the range of BNN glass content (0-15 wt.%) and the specific composition of the glass–ceramics. The practical application may be constrained by the temperature stability and energy storage efficiency under varying conditions.
1:Experimental Design and Method Selection:
The study employed the solid state method to prepare BTBMN ceramics with BNN glass addition. The composition varied from 0 to 15 wt.% BNN glass.
2:Sample Selection and Data Sources:
Samples were prepared with different BNN glass contents and characterized for their sintering, phase structure, microstructure, dielectric, and energy storage properties.
3:List of Experimental Equipment and Materials:
Used BaCO3, TiO2, Bi2O3, MgO, Nb2O5, B2O3, Na2B4O7, and Na2SiO3 as raw materials. Equipment included XRD, SEM, LCR meter, and ferroelectric test system.
4:Experimental Procedures and Operational Workflow:
Powders were ball-milled, dried, sintered, and characterized for density, phase structure, microstructure, dielectric properties, and energy storage properties.
5:Data Analysis Methods:
Dielectric properties were analyzed using an LCR meter, and ferroelectric properties were tested with a ferroelectric test system. Energy storage properties were calculated from P-E loops.
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