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Effects of biomimetic cross-sectional morphology on the piezoelectric properties of BaTiO3 nanorods-contained PVDF fibers
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Title
Effects of biomimetic cross-sectional morphology on the piezoelectric properties of BaTiO3 nanorods-contained PVDF fibers
Issued Date
2022-06
Citation
Kim, Young Kwang. (2022-06). Effects of biomimetic cross-sectional morphology on the piezoelectric properties of BaTiO3 nanorods-contained PVDF fibers. Nano Energy, 97. doi: 10.1016/j.nanoen.2022.107216
Type
Article
Author Keywords
Biomimetic morphologyPolyvinylidene difluoridePiezoelectric nanogeneratorBarium titanateMelt spinning
Keywords
POLY(VINYLIDENE FLUORIDE)NANOGENERATORCRYSTALLIZATIONNANOPARTICLESNANOFIBERSNANOSHEETWATER
ISSN
2211-2855
Abstract
In this study, the effects of the morphology of components on the performance of a piezoelectric nanogenerator were investigated. Polyvinylidene fluoride (PVDF) fibers with biomimetic cross-sectional morphologies inspired by plants were fabricated by integrating melt spinning, winding, and corona poling. The cross-sectional morphology of the PVDF fiber significantly influenced the piezoelectric performance because of differences in the exterior surface area and contact volume, which are important in the production of β-phase PVDF and crystallinity. The daffodil flower-shaped PVDF fiber exhibited the best piezoelectric performance among the PVDF fibers with various biomimetic cross-sectional morphologies (i.e., daffodil flower, radish flower, papyrus stem, and stalk grain stem) possessing different active areas for piezoelectricity generation. Its open-circuit voltage of 36.05 V and short-circuit current of 3.126 μA are attributable to its highest exterior surface area and contact volume, which maximize the active area (deformation area) for piezoelectricity generation. The effect of the morphology (nanoparticles and nanorods) of BaTiO3, which is another component of the piezoelectric nanogenerator, was also investigated using BaTiO3-contained PVDF fibers involving the daffodil flower-like cross-sectional morphology, namely, the PVDF-daffodil/BaTiO3 nanoparticle (NP) and PVDF-daffodil/BaTiO3 nanorod (NR). Compared with nanoparticles, the rod morphology more efficiently promoted asymmetry in the fiber during fabrication. The PVDF-daffodil/BaTiO3 NR produced an excellent open-circuit voltage of 62 V and a maximum power of 91 μW from human motion. This study provides new insights for the practical mass production and utilization of high-performance piezoelectric nanogenerators. © 2022 Elsevier Ltd
URI
http://hdl.handle.net/20.500.11750/17443
DOI
10.1016/j.nanoen.2022.107216
Publisher
Elsevier BV
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황성호
Hwang, Sung-Ho황성호

Division of Energy & Environmental Technology

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