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Herein, we prepared levan-xylanase (LXy) nanohybrid and characterized by scanning electron microscopy, particle size analyzer and zeta potential.
These constructs were studied and characterized by UV Vis spectroscopy, transmission electron microscopy, particle size distribution, and zeta potential.
A comprehensive rheological characterization (by steady and transient flow tests and linear viscoelastic measurements) and a microstructural study (by SEM microscopy, particle size distribution, etc).
The samples were characterized by Fourier-transform infrared spectroscopy, scanning electron microscopy, particle size distribution (DLS) and zeta potential measurements.
The core shell nanocomposite was synthesized by miniemulsion polymerization method, and nanoCMC and core shell nanocomposite were characterized by scanning electron microscope, transmission electron microscopy, particle size analyzer and thermogravimetric analysis.
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Applications that fall into this category are holographic microscopy; particle-size analysis; high-speed photography of various types, particularly of gas flows; data storage and retrieval, including displays; image formation through a random medium; and non-optical holography, particularly acoustic holography.
We combine atomic-force-microscopy particle-size-distribution measurements with earlier measurements on 1-anilino-8-naphthalene sulfonate, thioflavin T, and dynamic light scattering to develop a quantitative kinetic model for the aggregation of β-lactoglobulin into amyloid.
The hollow microspheres prepared in the present study were characterized by optical microscopy (OM), scanning electron microscopy (SEM), particle size analyzer and differential scanning calorimeter (DSC).
The influences of different precursors on the LVP cathode materials were investigated by using X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), particle size distribution measurement and electrochemical methods.
The particles are spherical in shape, which is further confirmed by scanning electron microscopy (SEM), particle size analysis and atomic force microscopy (AFM) studies.
The dextran nanoparticles loaded with proteins were characterized by scanning electron microscopy and particle size analysis.
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