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      Polyvinylidene Fluoride-Added Ceramic Powder Composite Near-Field Electrospinned Piezoelectric Fiber-Based Low-Frequency Dynamic Sensors

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          Abstract

          In this study, near-field electrospinning (NFES) is used to fabricate Ba x Sr1 x TiO 3 (BST)/poly(vinylidene fluoride) (PVDF) piezoelectric fiber composites with excellent mechanical properties and chemical properties. BST ceramic powder is blended with PVDF solution uniformly to prepare a solution of appropriate conductance. The parameter for BST/PVDF fiber processing is based on PVDF fibers. Scanning electron microscopy, differential scanning calorimetry, microtensile testing, Fourier transform infrared spectroscopy, and electricity test of the blends of BST/PVDF fibers are incorporated. Mechanical properties of the fibers are then measured by microtensile testing. Effects of distinct ratios of Ba/Sr and the content of Ba 0.7Sr 0.3TiO 3 ceramic powder on BST/PVDF piezoelectric fibers are discussed. Finally, BST/PVDF piezoelectric fiber composites are patterned on a poly(ethylene terephthalate) (PET)-based structure with an interdigital electrode as a BST/PVDF flexible energy harvester to capture ambient energy. The results show that the BST ceramic powder is ∼58–93 nm, and the diameters of piezoelectric fiber composites are ∼6.8–13.7 μm. The tensile strength of piezoelectric fiber composites is ∼74.92 MPa, and the Young’s coefficient tensile strength is ∼3.74 GPa. Mechanical properties are 2–3 times higher than those of pure PVDF piezoelectric fibers. The maximum open-circuit voltage and closed-loop current of BST/PVDF fibers reached ∼1025 mV and ∼391 nA, respectively. The electromechanical energy conversion efficiency of the BST/PVDF energy harvester is found to be 1–2 times higher than that of the PVDF energy harvester. It is confirmed and validated that the addition of BST ceramic powder could effectively increase the piezoelectric constant of PVDF piezoelectric fibers.

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          Most cited references23

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          Electrospinning: a fascinating method for the preparation of ultrathin fibers.

          Electrospinning is a highly versatile method to process solutions or melts, mainly of polymers, into continuous fibers with diameters ranging from a few micrometers to a few nanometers. This technique is applicable to virtually every soluble or fusible polymer. The polymers can be chemically modified and can also be tailored with additives ranging from simple carbon-black particles to complex species such as enzymes, viruses, and bacteria. Electrospinning appears to be straightforward, but is a rather intricate process that depends on a multitude of molecular, process, and technical parameters. The method provides access to entirely new materials, which may have complex chemical structures. Electrospinning is not only a focus of intense academic investigation; the technique is already being applied in many technological areas.
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            Scalable Algorithms for Molecular Dynamics Simulations on Commodity Clusters

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              Energy Harvesting Sensor Nodes: Survey and Implications

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                Author and article information

                Journal
                ACS Omega
                ACS Omega
                ao
                acsodf
                ACS Omega
                American Chemical Society
                2470-1343
                10 July 2020
                21 July 2020
                : 5
                : 28
                : 17090-17101
                Affiliations
                []Department of Mechanical and Electro-Mechanical Engineering, National Sun Yat-sen University , 804 Kaohsiung, Taiwan
                []Institute of Medical Science and Technology, National Sun Yat-sen University , 804 Kaohsiung, Taiwan
                [§ ]Institute of Biomedical Sciences, National Sun Yat-sen University , 804 Kaohsiung, Taiwan
                []Department of Material and Optoelectronic Science, Center of Crystal Research, National Sun Yat-sen University , 804 Kaohsiung, Taiwan
                []Wuxi School of Medicine, Jiangnan University , 214122 Wuxi, China
                [@ ]Department of Emergency Medicine, Kaohsiung Armed Forces General Hospital , Kaohsiung 80284, Taiwan
                []Department of Marine Biotechnology and Resources, National Sun Yat-sen University , Kaohsiung 80424, Taiwan
                []School of Computer Science and Engineering, Nanyang Technological University , 639798, Singapore
                []State Key Laboratory of Microbial Metabolism and School of Life Sciences and Biotechnology, Shanghai Jiao Tong University , Shanghai 200240, China
                []Department of Electrical and Electronics Engineering, IIMT Engineering College, Uttar Pradesh Technical University , Lucknow 226021, Uttar Pradesh, India
                [†† ]Capital University of Science and Technology , Islamabad 44000, Pakistan
                [‡‡ ]Department of Biotechnology, Faculty of Life Sciences, Institute of Applied Medicines & Research , Ghaziabad 201206, Uttar Pradesh, India
                Author notes
                Article
                10.1021/acsomega.0c00805
                7376691
                32715194
                9ab9302b-c0d3-478e-ad19-2f45c31a4c3a
                Copyright © 2020 American Chemical Society

                This is an open access article published under an ACS AuthorChoice License, which permits copying and redistribution of the article or any adaptations for non-commercial purposes.

                History
                : 23 February 2020
                : 26 June 2020
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