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Porous membranes with 2.11 mequiv cm−3 of fixed charged density, 0.33 mS cm−1 of conductivity, 0.9 of transport number and ∼500 MPa of Young's modulus were obtained by carefully controlling the two-step phase inversion preparation process.
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We find that a complete phase inversion occurs during the preparation procedure, when the gelling solvents are replaced by an acidic solution, providing the proton conducting property.
A phase inversion process with a new preparation technique was then demonstrated for cellulose hydrogel films.
This paper introduces response surface methodology (RSM) as an efficient approach for modeling and optimization nanofiltration (NF) membrane preparation via phase inversion.
The phase inversion technique employed for the scaffolds preparation allows for a relatively easy regulation of the structure of the scaffold wall, using established membrane technology methods.
Phase inversion temperature technique was employed for the preparation of emulsions [ 16, 17].
Phase inversion temperature method was applied for the preparation of cream.
Most commercial polymeric membranes are prepared by phase inversion.
A Membrane process coupled with phase inversion technique has been successfully applied for the preparation of ionic liquid microsphere (ILMC).
In this study, water droplets generated using an ultrasonic atomizer at room temperature were replaced with water droplets heated to a high temperature (further denoted as hot water droplets) by an electrical heating steam generator during the preparation of porous membranes via phase inversion to reduce the amount of consumed water and fabrication time.
For example, sulfonated poly etheretherketone) has already proved to be a very suitable matrix for IMS of various PSMNPs [11, 12], but it cannot be used for the preparation of catalytic membranes by phase inversion technique15 due to the following reasons: (1) its high hydrophilicity and (2) quite low mechanical stability.
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