Sandwich structured BT-Fe3O4/PVDF composites with excellent dielectric properties and energy density

In this paper, BT-Fe 3 O 4 hybrid particles were firstly fabricated using a chemical co-precipitation method, and then sandwich-structured BT-Fe 3 O 4 /PVDF composites (BT-Fe 3 O 4 /PVDF-S) were prepared. The influence of the BT-Fe 3 O 4 and the sandwich structure on the dielectric properties of the...

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Veröffentlicht in:Journal of materials science. Materials in electronics 2017-08, Vol.28 (16), p.11900-11906
Hauptverfasser: Cui, Yang, Wang, Xuan, Chi, Qingguo, Dong, Jiufeng, Ma, Tao, Zhang, Changhai, Lei, Qingquan
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Sprache:eng
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Zusammenfassung:In this paper, BT-Fe 3 O 4 hybrid particles were firstly fabricated using a chemical co-precipitation method, and then sandwich-structured BT-Fe 3 O 4 /PVDF composites (BT-Fe 3 O 4 /PVDF-S) were prepared. The influence of the BT-Fe 3 O 4 and the sandwich structure on the dielectric properties of the composites was studied. The results showed that the BT-Fe 3 O 4 /PVDF-S composites exhibit enhanced dielectric performance. Interface activation E a shows that conductive Fe 3 O 4 nanoparticles can increase the number of activated electrons at the interface between the Fe 3 O 4 and PVDF matrix, which can significantly enhance the interface polarization and dielectric response under an electric field. In addition, because the excellent insulating property of the PVDF layer can prevent the leakage of current through the sample and suppress the dipole polarization, the conductivity as well as the dielectric loss of the composites were also reduced. Moreover, the energy density of the 5 vol% BT-Fe 3 O 4 /PVDF-S composites is 2.24 J/cm 3 at 2100 kV/cm, which is an enhancement of 1.77 times compared to the BT/PVDF (1.26 J/cm 3 at 1800 kV/cm). The findings provide a simple but effective way for nanocomposites to have enhanced dielectric properties for use in next-generation electronics.
ISSN:0957-4522
1573-482X
DOI:10.1007/s10854-017-6998-z