研究目的
To develop and experimentally verify theoretical models to predict the g31 piezoelectric voltage coefficient of a direct print energy harvester nanocomposite, focusing on the aspect ratio and alignment of the active phase to significantly affect the performance of the nanocomposite.
研究成果
The study demonstrates that the aspect ratio and alignment of the active phase can significantly affect the performance of the nanocomposite. By using nanowires with high aspect ratio, the voltage coefficient of the nanocomposite can outperform that of the bulk piezoelectric material by more than seven times. The results provide a robust route for modeling piezoelectric nanocomposite energy harvesters and mitigating power constraints.
研究不足
The models slightly overestimate the g31 coefficients due to underestimation of the ε33 coefficients. The experimental validation is limited to nanocomposites with specific aspect ratios and weight fractions.
1:Experimental Design and Method Selection:
The study employs the Mori-Tanaka method and FEM to model the piezoelectric voltage coefficient of nanocomposites.
2:Sample Selection and Data Sources:
Barium titanate (BTO) nanowires with a range of aspect ratios and different volume fractions were prepared.
3:List of Experimental Equipment and Materials:
Includes a dynamic mechanical analyzer (DMA, Q800, TA Instruments), LCR meter (Agilent E4980A), electrometer (Keysight B2985A), and a direct write system for nanocomposite fabrication.
4:Experimental Procedures and Operational Workflow:
Nanocomposites were fabricated using a direct write method, followed by poling and electrical characterization to measure the g31 coefficient and power output.
5:Data Analysis Methods:
The piezoelectric voltage coefficient was calculated using the measured capacitance, thickness, and length of the nanocomposite, along with the output voltage and input force.
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