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Fabrication techniques include solution self-assembly, mini-emulsion, layer-by-layer and template techniques.
Recent advances in manufacturing based on sacrificial fiber or template techniques have allowed complex networks of microchannels to be embedded in microvascular composites.
Although the surfactant template techniques require a liquid tungsten precursor to utilize interaction with a surfactant in principle, we have focused on the interaction between a solid tungsten precursor and a surfactant under solvothermal conditions to yield mesoporous WO3.
In this work, the hierarchically porous bismuth oxide/layered double hydroxide (Bi2O3/LDHs) composites were prepared based on biological template techniques, and the as-prepared composites show enhanced iodine adsorption capacity compared with LDHs fibers.
The organic template techniques are classified into three, on the basis of their purposes, pore structure control in the resultant carbons (membranes and fibers), preparation of hollow carbon nanofibers by spinning, and improvement in processability, particularly spinnability for carbon nanofiber fabrication.
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The NLC of ARM (Nanoject) were formulated by employing a microemulsion template technique.
Well-sized carbons have been elaborated through a template technique using mesoporous silica.
Membranes produced using the pillar template technique showed high water permeability and high size selectivity.
We described an AAO template technique for fabricating regular arrays of P3HT pillars and interdigitated p-n junctions of P3HT/C60.
Nanomechanical properties of indium nanowires like structures fabricated on quartz substrate by trench template technique, measured using nanoindentation.
A platinum electrode with two-dimensional ordered arrays of hemispherical cavities was fabricated via the inverted crystal template technique.
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