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In cellulose I-rich substrates with remaining fibre wall morphology, a pore system exists in a water-swollen state of the samples.
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pMMSNs had a spherical morphology and a pore size of 2.2 nm.
The innovation of this work is in the direct and rapid formation of porous microspheres with a pore morphology which is designed to create cavities suitable for adherence and growth of cells by adapting the temperature conditions of atomization.
To compare the properties of the fabricated 3D cellulose structure, we used a PCL fibrous scaffold, which has a similar fibrous morphology and pore geometry, as a control.
In order to study the effect of electrolytes on pore morphology, a set of experiments were performed in different electrolytes during the second-step anodization.
The electrochemical performance of supercapacitors fabricated with the as-prepared CGBs, having a different morphology and pore structure, was then evaluated.
The first step was fabrication of the 3D porous scaffold green body to control both the morphology and pore structure using a PED system without hardening.
Uniquely, as evidenced by scanning electron microscopy (SEM) and atomic force microscopy (AFM), oCVD PANI shows a rough nanoporous morphology with pore openings of around 20 nm, while maintaining the conformality and uniformity of the coating.
Ionic liquid [Omim]+Cl−, as a template, plays an important role in the morphology and pore structure of the products due to its strong interactions with reaction particles.
An analytical model based on the performed PFM simulations allows to formulate the critical current density as a function of separator morphology and pore radius.
Morphology and pore size along with a graphene wall thickness affect the behavior and electrochemical properties of graphene.
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