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In this study, two types of polyimide (PI) nanofiber mats, including (1) the mats consisting of (almost) randomly overlaid PI nanofibers and (2) the mats consisting of highly aligned PI nanofibers, were prepared by the materials-processing technique of electrospinning.
In the present study, we designed and fabricated composite fibrous mats consisting of poly(ε-caprolactone) (PCL), chitosan (CH), or chitosan-caffeic acid conjugate (CCA) by an electrospinning technique for wound dressing application.
In this work, we have investigated the impact of fiberizing method on dynamic properties and relaxation behavior of the glass wool fibers, and inferred its effect on the mechanical properties of the filtration mats consisting of glass wool fibers.
Ag nanoparticles (AgNPs) (11, 15, and 25 wt.%) were deposited on the surface of the freestanding and mechanically flexible mats consisting of lignin-derived electrospun carbon nanofibers (ECNFs) by the supercritical CO2 method followed by the thermal treated at 180 °C.
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The top and bottom reinforcing steel mats consist of #5 rebars spaced at eight inches.
The structural transformation of the nanofiber mats consisted of three regimes.
Aligned fiber-hybrid mats consisted of nylon-6 (PA-6) nanofibers and PMMA microfibers are prepared using a self-blending co-electrospinning method, followed by hot press molding to fabricate into transparent nanocomposites.
Spread foundations may be either of the spread footing (made with wide bases placed directly beneath the load-bearing beams or walls), mat (consisting of slabs, usually of reinforced concrete, which underlie the entire area of a building), or floating types.
In this study, a self-sustaining, flexible mat consisting of nitrogen-enriched carbon fiber (NCF) network was successfully produced through the co-electrospinning of a polyacrylonitrile (PAN /polyvinylpyrrolidone (PVP /SiO2 blended solution, followed by pyrolysis and SiO2 removal processes.
We collected the electrospun nanofibers across the gap of a U-shaped metal frame to generate a free-standing mat consisting of uniaxially aligned nanofibers.
Both the micro- and macro-conidia may germinate at a suitable temperature (27 °C) and reproduce mycelial mat consisting of long septate hyphae (Fig. 1A ).
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