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Thermogravimetric analysis, X-ray diffraction, low temperature nitrogen sorption and high resolution transmission electron microscopy methods were used to characterize the structure of materials.
X-ray diffraction, Raman spectroscopy, low temperature N2 sorption and high resolution transmission electron microscopy methods were used to characterise the structure of synthesised materials.
Transmission electron microscopy methods were applied to Cu3Au; both diffraction contrast images and diffraction patterns reveal that disordering takes place locally.
Despite the differences in format, the results obtained by the ELISA and fluorescence microscopy methods were in agreement.
Prior to correlation, images acquired with different correlative microscopy methods were first resized to the same scale/pixel size.
Wide-field and confocal fluorescence microscopy methods were previously described (Efimov et al., 2007; Jodoin et al., 2013).
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Low-light microscopy methods are receiving increased attention as new applications have emerged.
An array of fluorescent microscopy methods is available, but due to the inherent noise and complexity inside the cell, they are often hard to interpret.
The visualization and quantification of mitochondria-associated proteins with high power microscopy methods is of particular interest to investigate protein architecture in this organelle.
While the basic implementations of these microscopy methods are relatively mature, an important direction of continuing technological innovation lies in improving the throughput of these systems.
Conventional electron microscopy methods are limited in their ability to address fine surface details or to determine the bulk microstructure of multicomponent polymeric materials.
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