研究目的
To investigate the effect of Mn-doping on the dielectric and energy storage properties of (Pb0.91La0.06)(Zr0.96Ti0.04)O3 antiferroelectric ceramics, aiming to enhance the dielectric breakdown strength (DBS) and energy storage density.
研究成果
Mn-doping effectively enhances the dielectric breakdown strength and energy storage properties of PLZT antiferroelectric ceramics. The PLZT-1.0Mn ceramic exhibits a high recoverable energy density of 7.65 J/cm3 and energy efficiency of 87%, making it a promising candidate for pulsed power capacitors.
研究不足
The study focuses on Mn-doping effects on PLZT ceramics, but the scalability and industrial applicability of the method are not extensively discussed. The inhomogeneity of grain sizes in Mn-doped ceramics may affect the consistency of properties.
1:Experimental Design and Method Selection:
Conventional solid-state reaction method was used to fabricate (Pb
2:91La06)(Zr96Ti04)O3-xmol% MnCO3 ceramics. Sample Selection and Data Sources:
Raw materials including Pb3O4, ZrO2, TiO2, La2O3, and MnCO3 powders were used.
3:List of Experimental Equipment and Materials:
X-ray diffraction (D8 ADVANCE, Germany), SEM (Model JSM6700F; JEOL, Tokyo, Japan), LCR meter (Model HP4284A, Agilent Technologies Japan Ltd.), voltage withstand testing device (SD-DC 200 kV), aix ACCT TF 2000 analyzer ferroelectric measurement system.
4:Experimental Procedures and Operational Workflow:
Ball-milling, calcination, sintering, and characterization of phase structure, microstructure, dielectric properties, and energy storage properties.
5:Data Analysis Methods:
Weibull distribution for DBS analysis, integration of P-E hysteresis loops for energy storage properties.
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