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首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Fabrication of polyethylene glycol/polyvinylidene fluoride core/shell nanofibers via melt electrospinning and their characteristics
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Fabrication of polyethylene glycol/polyvinylidene fluoride core/shell nanofibers via melt electrospinning and their characteristics

机译:熔融纺丝法制备聚乙二醇/聚偏二氟乙烯核/壳纳米纤维及其特性

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摘要

Polyethylene glycol (PEG)/polyvinylidene fluoride (PVDF) core/shell nanofibers were fabricated using coaxial electrospinning. In the core/shell composite nanofibers, melted PEG and PVDF solutions were coaxially electrospun (e-spun) through a double spinneret as a core layer and as a shell layer, respectively. The PEG of the core layer in the e-spun composite nanofibers is a phase-change material (PCM) that is able to store and release large amounts of thermal energy at a constant phase transition temperature. PEG was encapsulated with a PVDF shell to prevent its leakage and reduce the effect of the external environment during usage. The core/shell structure of the e-spun composite nanofiber was confirmed using water contact angle (WCA) measurements, X-ray photoelectron spectroscopy (XPS) analysis, and transmission electron microscopy (TEM). Differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA) showed that the e-spun composite nanofibers had good thermal stability and energy storage capacity. PEG of three different molecular weights (MWs: 1000 Da, 2000 Da and 4000 Da) was used as the core material to prepare e-spun composite nanofibers with different melting/crystallization temperature ranges and thermal storage capacities. Among these PEGs, the WCA value of 106°of e-spun PEG4000/PVDF core/shell nanofibers is similar to that of e-spun PVDF nanofibers confirming that the core/shell nanofibers could completely encapsulate 4000 Da PEG at the highest core feed rate of 0.210 mL/h. Regarding in terms of energy storage capacity, core/shell nanofibers, fabricated at the core feed rate of 0.210 mL/h, had the largest content of PEG in the core up to 42.5 wt% with a latent heat of 68 J/g and a melting temperature of 62.8 °C. These shape-stabilized core/shell nanofibers showed good thermal reliability and sufficiently high tensile strength, leading to various potential applications related to energy storage.
机译:聚乙二醇(PEG)/聚偏二氟乙烯(PVDF)核/壳纳米纤维是使用同轴电纺丝制造的。在核/壳复合纳米纤维中,熔融的PEG和PVDF溶液分别通过双喷丝头作为芯层和壳层进行同轴电纺(电纺)。电纺复合纳米纤维中核心层的PEG是一种相变材料(PCM),能够在恒定的相变温度下存储和释放大量热能。 PEG用PVDF外壳封装,以防止其泄漏并减少使用期间外部环境的影响。使用水接触角(WCA)测量,X射线光电子能谱(XPS)分析和透射电子显微镜(TEM)证实了电纺复合纳米纤维的核/壳结构。差示扫描量热法(DSC)和热重分析(TGA)表明,电纺复合纳米纤维具有良好的热稳定性和储能能力。以三种不同分子量(MWs:1000 Da,2000 Da和4000 Da)的PEG为核心材料,制备了具有不同熔融/结晶温度范围和储热能力的电纺复合纳米纤维。在这些PEG中,电纺PEG4000 / PVDF核/壳纳米纤维的106°WCA值与电纺PVDF纳米纤维的WCA值相似,这证实了核/壳纳米纤维可以以最高的核进料速率完全包封4000 Da PEG。 0.210 mL / h。就储能能力而言,以0.210 mL / h的芯进料速度制造的芯/壳纳米纤维在芯中最大的PEG含量高达42.5 wt%,潜热为68 J / g,熔化温度为62.8°C。这些形状稳定的核/壳纳米纤维表现出良好的热可靠性和足够高的拉伸强度,从而导致了与储能相关的各种潜在应用。

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