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This membrane is characterized by the smallest size of pores, which determine charge selectivity.
This synthetic membrane is characterized by low batch-to-batch variability, thus providing more consistent data.
The optimal conductive membrane is characterized using SEM-EDX, XRD and XPS.
Prior to its use in the reactor experiments, the membrane is characterized through single-gas permeation measurements.
The structure of a carbon molecular sieve (CMS) membrane is characterized by the through pores and blind pores with non-linear sorption isotherms inside.
The membrane is characterized through the use of adjustable parameters such as the average pore radius, the effective membrane thickness and the volumetric charge density.
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The resultant membrane was characterized with pure water flux and rejection of electrolytes MgCl2 and NaCl.
At first the mass transfer through a porous glass membrane was characterized.
The calcium sulphate deposit on the membrane was characterized by SEM and computer-aided image analysis.
The compressive strain, induced within the membrane, was characterized based on the analysis of the finite element modeling (FEM).
The final nanofibrous membrane was characterized by an optical microscope (Olympus BX51), a scanning electron microscope (SEM, DB235 FEI), and a Fourier transform infrared spectroscope (FTIR, Thermo Scientific Nicolet iN10).
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