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In this research, it was focussed on manufacturing elastic and electro-conductive yarns (el2-yarns) via hollow spindle spinning.
This high performance is attributed to the composite material's hollow spindle structure, which facilitates the electrolyte infiltration, resulting in an increased solid-liquid interface.
DCUY was fabricated by the hollow spindle spinning machine with a flax core yarn, which were wrapped around PLA sheath yarns.
With a coated carbon thickness of about 10 nm, the obtained composite maintained the morphology and size of the hollow spindle.
The carbon layer covering the hollow spindle also contributes to the high performance of the LiMnPO4/C material as the carbon layer improves its electronic conductivity and the nano-scaled wall thickness decreases the paths of Li deintercalation.
These parameters include the hollow spindle speed, tension of core component and machine throughput for controlling and varying the number of turns of covering.
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The scanning electron microscopy (SEM) and transmission electron microscope (TEM) images show that the LiMnPO4 particles consist of hollow spindles with a mean width of 200 nm, length of 500-700 nm, and wall thickness of about 30-60 nm.
The two component hybrid cover yarns were produced using a hollow spindle-spinning machine YCHN-303.
The contrast between the central portion and the edge of Co3O4 colloids strongly supports the formation of hollow spindle-like colloids.
The hybrid NPs are composed of spindle, hollow, and ultrafine iron oxide NPs as seeds and 3-aminopropyltriethyloxysilane as linker between the magnetic cores and TiO2 layers, respectively.
Figure 10 shows the surface morphology and microstructure of spindle-like Co3O4 porous and hollow nanocapsules obtained from the corresponding spindle-like CoCO3 precursors.
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