• Title/Summary/Keyword: $\beta$-PVDF

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Phase Transition and Improvement of Output Efficiency of the PZT/PVDF Piezoelectric Device by Adding Carbon Nanotubes (Carbon Nanotube의 첨가에 의한 PZT/PVDF 압전소자의 상전이와 출력 효율 개선)

  • Lim, Youngtaek;Lee, Sunwoo
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.31 no.2
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    • pp.94-97
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    • 2018
  • Lead zirconate titanate/poly-vinylidene fluoride (PZT/PVDF) piezoelectric devices were fabricated by incorporating carbon nanotubes (CNTs), for use as flexible energy harvesting devices. CNTs were added to maximize the formation of the ${\beta}$ phase of PVDF to enhance the piezoelectricity of the devices. The phase transition of PVDF induced by the addition of CNTs was confirmed by analyzing the X-ray diffraction patterns, scanning electron microscopy images, and atomic force microscopy images. The enhanced output efficiency of the PZT/PVDF piezoelectric devices was confirmed by measuring the output current and voltage of the fabricated devices. The maximum output current and voltage of the PZT/PVDF piezoelectric devices was 200 nA and 350 mV, respectively, upon incorporation of 0.06 wt% CNTs.

Preparation and Anti-fouling Properties of PVDF Mixed Matrix Asymmetric Membranes Impregnated with 𝛽-cyclodextrin (𝛽-사이클로덱스트린을 함침시킨 PVDF 혼합기질 비대칭막의 제조와 내오염성 평가)

  • Shin, Sung Ju;Lee, Jong Sung;Lee, Jeong Gil;Youm, Kyung Ho
    • Membrane Journal
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    • v.31 no.6
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    • pp.434-442
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    • 2021
  • Poly(vinylidene fluoride) (PVDF) membrane has a good membrane durability because of its high mechanical resistance, thermal and chemical stability. However, the strong hydrophobic property of PVDF membrane can induce a low water permeability and easy fouling by proteins and organic matters. In order to improve the anti-fouling properties of PVDF membrane, the PVDF mixed matrix asymmetric membranes impregnated with biofunctional material 𝛽-cyclodextrin (𝛽-CD) in the membrane structure were prepared by phase inversion method. The membrane filtration experiments of pure water and BSA solution were performed using the PVDF/𝛽-CD mixed matrix asymmetric membranes prepared according to the 𝛽-CD contents. The experiments showed that the introduction of 𝛽-CD into the PVDF polymer matrix contributed to increase in the hydrophilic property of the PVDF membranes, and this led to the reduction of contact angles and improvement of anti-fouling properties. The PVDF/𝛽-CD membrane which was prepared using the dope solution with a 2 wt% 𝛽-CD content represented 64 L/m2·h of pure water flux, 95% of BSA rejection and maximum 80% of flux enhancements compared to flux results of the pristine PVDF membrane.

Fabrication of CNT/PVDF Composite Film and Its Electrical Properties (CNT/PVDF 압전 복합막의 제작과 전기적 특성)

  • Lee, Sunwoo;Jung, Nak-Chun
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.26 no.8
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    • pp.620-623
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    • 2013
  • The carbon nanotube / poly-vinylidene fluoride (CNT/PVDF) composite films for the nano-generator devices were fabricated by spray coating method using the CNT/PVDF solution, which was prepared by adding PVDF pellets into the CNT dispersed N-Methyl-2-pyrroli-done (NMP) solution. The flexible CNT/PVDF composite films were investigated by the scanning electron microscopy, which revealed that the CNTs were uniformly dispersed in the PVDF matrix and thickness of the films was approximately $20{\mu}m$. Fourier transform infra-red spectra were used to investigate crystal structure of the as-spray-coated CNT/PVDF films, and we found that they revealed extremely large portion of the ${\beta}$ phase PVDF. The capacitance of the CNT/PVDF films increased by adding CNTs into the PVDF matrix, and finally saturated. However, the resistance didn't show any saturation effect in the CNT concentration range of 0~4 wt%. Finally, the resulting nano-generator devices revealed reasonable current output after given mechanical stress.

The fabrication of PVDF organic thin films by thermal evaporation deposition method and their molecular orientation properties (열증착법을 이용한 PVDF 유기박막의 제조와 분자배향특성)

  • 임응춘;이덕출
    • Journal of the Korean Vacuum Society
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    • v.6 no.2
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    • pp.122-128
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    • 1997
  • In this study, the PVDF organic thin films were fabricated by thermal evaporation deposition which is one of the dry-processing methods. The distance from heat source to substrate was 5 cm. The substrate temperature was maintained at $30 ^{\circ}C$ during deposition. The working pressure was about $2.0\times10^{-5}$Torr and the temperature of heat source was increased at the rate of 6 to $8^{\circ}C$/min. At $270^{\circ}C$, the shutter was opened and the deposition of PVDF has stared. As the electrical field intensity increased, $\alpha$ peaks such $530\textrm{cm}^{-1},795\textrm{cm}^{-1},1182\textrm{cm}^{-1}$ decreased, and $\beta$ peaks such as $510\textrm{cm}^{-1},1273\textrm{cm}^{-1}$ increased. The intensity of $530\textrm{cm}^{-1}$ peak was stronger than that of $510\textrm{cm}^{-1}$ peak velow the 71.4 kV/cm, intensity of electrical field. This result showed the characteristic of film mainly due to $\alpha$-mode. According to these results, the molecular structure of PVDF thin film is transformed from $\alpha$-mode with TGT or TG'T to $\beta$-mode with planar zigzag structure TT, as increasing of intensity of electrical field.

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Preparation of a PVDF (Polyvinylidene Fluoride) Thin Film Grown by Using the Method of Electric Field Application (전계인가법을 이용한 PVDF 박막의 제작과 특성에 대한 연구)

  • 장동훈;강성준;윤영섭
    • Proceedings of the IEEK Conference
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    • 2000.06b
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    • pp.76-79
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    • 2000
  • The 3$\mu\textrm{m}$-thick PVDF (Polyvinyiidene fluoride) thin film have been prepared using physical vapor deposition with electric field, and its FT-IR specrum, dielectric property and electric conduction phenomenon have been investigated. Since the characteristic peaks ate detected at 509.45 and 1273.6〔cm〕 in the FT-IR spectrum, we are confirmed that the ${\beta}$ -phase is dominant in the PVDF thin film. In the results of dielectric properties, the PVDF thin film shows anomalous dispersion, i.e. gradual decrease of dielectric constant with increase of frequency, and also that the dielectric absorption point changes from 200Hz to 7000Hz with increasing temperature of thin film, which is consistent with the Debye's theory. The activation energy (ΔH) obtained from temperature dependence of dielectric loss is 21.64 ㎉/㏖. We confirm that the electric conduction mechanism of PVDF thin film is dominated by ionic conduction by investigating the dependence of the leakage current of the thin film on the temperature and the electric field.

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A Study on the Thermally Stimulated Current of PVDF Thin Film Prepared by Physical Vapor Deposition Method (진공증착법으로 제조한 PVDF 박막의 열자격전류에 관한 연구)

  • Lee, S.W.;Park, S.H.;Kim, H.K.;Lim, E.C.;Kim, S.J.;Yuk, J.H.;Lee, D.C.
    • Proceedings of the KIEE Conference
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    • 1998.11c
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    • pp.755-757
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    • 1998
  • The thermally stimulated current (TSC) of PVDF thin film prepared by physical vapor deposition method was investigated. PVDF shows three TSC peaks designated $P_1$, $P_2$ and $P_3$ in ascending order of temperature. The $P_1$ peak is associated with water in the PVDF specimen. $P_2$ and $P_3$ Peaks are specific peaks of $\alpha$ and $\beta$ type PVDF, respectively. The peak temperature was shifted to higher temperature, and peak intensity was decreased with increasing substrate temperature under thin film preparation.

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Effect of Microwave Irradiation on Conformation of Crystalline of PVDF Nano-composite Film in the Solvent Evaporation Process (용매 증발 과정 중 마이크로웨이브 처리가 PVDF 복합재료 필름의 결정화 형태에 미치는 영향)

  • Hong, Hyunsoo;Kim, Seong-Su
    • Composites Research
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    • v.33 no.1
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    • pp.19-24
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    • 2020
  • In this paper, the microwave irradiation process was conducted during the Poly(vinylidene fluoride) (PVDF) nano-composite film fabrication process to analyze how the β-crystalline is increased. TiO2 was added as a nanoparticle reinforcement to further improve the β-crystalline conformation of the PVDF films by van der Waals force due to the difference of electronegativity between PVDF and the metal oxide nanoparticle. The crystalline conformation of the fabricated films was analyzed by X-ray diffraction and Fourier transform infrared spectroscopy. According to these analysis results, it was confirmed that the microwave irradiation process during the solvent evaporation process increases the crystallinity of the PVDF films, and more β-crystalline can be obtained after additional film stretching process. It was also found that the PVDF nano-composite films with the metal oxide have relatively higher β-crystalline conformation rather than the neat PVDF films.

A Study on the Dielectric Properties and Electrical Conduction of PVDF Thin Films by Physical Vapor Deposition (진공 증착법으로 제작한 PVDF 박막의 유전 특성과 전기전도도에 대한 연구)

  • Gang, Seong-Jun;Lee, Won-Jae;Jang, Dong-Hun;Yun, Yeong-Seop
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.37 no.5
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    • pp.9-15
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    • 2000
  • The 3 ${\mu}{\textrm}{m}$-thick PVDF (polyvinylidene fluoride) thin film have been prepared using physical vapor deposition with electric field, and its FT-IR spectrum, dielectric property and electric conduction phenomenon have been investigated. Since the characteristic peaks are detected at 509.45 [$cm^{-1}$ /] and 1273.6 [$cm^{-1}$ /]in the FT-IR spectrum, we are confirmed that the $\beta$ -phase is dominant in the PVDF thin film. In the results of dielectric properties, the PVDF thin film shows anomalous dispersion, i.e. gradual decrease of dielectric constant with increase of frequency, and also that the dielectric absorption point changes from 200 Hz to 7000 Hz with increasing temperature of thin film, which is consistent with the Debye's theory. The activation energy ( $\Delta$H) obtained from temperature dependence of dielectric loss is 21.64 ㎉/mole. We confirm that the electric conduction mechanism of PVDF thin film is dominated by ionic conduction by investigating the dependence of the leakage current of the thin film on the temperature and the electric field.

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The Enhanced Electrochemical Performance of Lithium Metal Batteries through the Piezoelectric Protective Layer (압전 특성의 보호층을 통한 리튬 금속 전지의 전기화학적 특성 개선)

  • Dae Ung Park;Weon Ho Shin;Hiesang Sohn
    • Membrane Journal
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    • v.33 no.1
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    • pp.13-22
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    • 2023
  • Despite high capacity of lithium metal anode, its uncontrollable dendrite growth results in the poor electrochemical (EC) performance (low Coulomb efficiency and limited cycle stability) and unsafe operation. In this study, we demonstrated a lithium metal anode protected with BaTiO3/PVDF based piezoelectric layer to enhance its EC performance by utilizing the locally polarized lithium metal after volume expansions. As-formed lithium metal electrode deposited with BTO@PVDF layer exhibited an enhanced Coulombic efficiency (> 98% for 100 cycles) and facilitated lithium ion diffusions (lithium diffusion coefficient: DLi+), revealing the effectiveness of piezoelectric layer deposited lithium metal electrode approach.

A Study on the electrical condution phenomena and TSC of PVDF thin films fabricated by PVD method (진공증착법에 의해 제조된 PVDF 박막의 전기전도현상과 열자격전류에 관한 연구)

  • 이선우;박수홍;이덕출
    • Journal of the Korean Vacuum Society
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    • v.8 no.3A
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    • pp.187-193
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    • 1999
  • In this study, PVDF thin films which show the excellent piezoelectricity and pyroelectricity, are prepared by PVD (physical vapor deposition) method, and thir electrical conduction phenomena for analyses of the electrical conduction mechanism and TSC (Thermally Stimulated Current) for identification of the behavior of conductive carriers are investigated. As a result of FT-IR(Fourier Transform Infrared Spectroscopy) spectra, the crystalline phase transforms $\alpha$ type into $\beta$ type with increasing electric field. From XRD (X-Ray diffraction) analyses patterns, the degree of crystallinity increases from 49.8% to 67%, as the substrate temperature increases from $30^{\circ}C$ to $80^{\circ}C$. As a result of electrical conduction phenomena, the electrical conduction mechanism of PVDF thin films is identified as ionic conduction mechanism. From TSC analyses, there are three peaks as P1, P2, P3 with increasing temperature, and with increasing substrate temperature, the peak temperature of TSC increases and the peak intensity of TSC decreases.

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