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Hassan, M. Th. et al. High-temporal-resolution electron microscopy for imaging ultrafast electron dynamics.
Helmchen, F., Denk, W. & Kerr, J.N. Miniaturization of two-photon microscopy for imaging in freely moving animals.
Leendertz, C., Streicher, F., Lux-Steiner, M. C. & Sadewasser, S. Evaluation of Kelvin probe force microscopy for imaging grain boundaries in chalcopyrite thin films.
This chapter summarizes our experience with the use of laser scanning confocal microscopy for imaging adipose tissue in rodents.
Furthermore, results in Fig. 2 show the combination of X-ray-fluorescence microscopy and fluorescent confocal microscopy for imaging the same cell treated with a TiO2-DNA nanoconjugate whose nucleic acid component is labeled with tetramethylrhodamine (TAMRA).
Figure 5 The comparison of intracellular QDs fluorescence intensity of wild-type yeast cells and engineered yeast cells [ 54 ]. Figure 6 The multicolor imaging of fixed human epithelial cells using five different color QDs [ 55 ]. Figure 7 Using confocal microscopy for imaging β-CD-L-Arg/CdSe/ZnSe QDs in ECV-304 cells.
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The diameter of mitochondria is generally close to the resolution limit of conventional light microscopy, rendering diffraction-unlimited super-resolution light microscopy (nanoscopy) for imaging submitochondrial protein distributions often mandatory.
Diffraction-unlimited resolution provided by Stimulated Emission Depletion (STED) microscopy allows for imaging cellular processes in living cells that are not visible by conventional microscopy.
Multiphoton microscopy (MPM) offers many advantages over conventional wide-field and confocal laser scanning microscopy (CLSM) for imaging biological samples such as 3D resolution of excitation, reduced phototoxicity, and deeper tissue imaging.
The present study was designed to show the applicability of scanning ion conductance microscopy (SICM) for imaging different types of biological samples.
For visual conformation of graphene presence in the resulting black opaque supernatant, we used transmission electron microscopy (TEM) for imaging of graphene in the drop casted sample.
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