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scanning tunnel microscopy.
By virtue of their high precision, proximal probe methods based on scanning tunnel microscopy and atomic force microscopy (AFM) have been employed to fabricate nanostructures [9 13].
To study changes caused by such modifications a wide range of methods are currently used: X-ray diffraction method [13], small-angle X-ray scattering (SAXS) [14 16], small-angle neutron scattering [16 18], gas adsorption/desorption [19 21], scanning tunnel microscopy [22], atomic force microscopy [23], and transmission electron microscopy [24].
The purpose of this article is to study the initial growing stages of Ge-Sn alloys on Si(100) surfaces and the distribution of Ge-Sn ND at the temperature range from 150 to 450°C by the technique of RHEED in situ, atomic force microscopy (AFM), and scanning tunnel microscopy (STM) ex situ.
Ex situ scanning tunnel microscopy (STM) with an ultrahigh vacuum instrument Omicron-Riber (Omicron Nanotechnology GmbH, Taunusstein, Germany; Riber, Paris, France) was used for the characterization of the surface morphology.
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Figure 2: Scanning tunnelling microscopy of Si 553 -Au.
A single molecule view of bistilbene photoisomerization on a surface using scanning tunnelling microscopy.
Schulz, F. et al. Many-body transitions in a single molecule visualized by scanning tunnelling microscopy.
Scanning probe microscopies, such as scanning tunnelling microscopy (STM) and atomic force microscopy (AFM), were initially developed for imaging surfaces23.
We performed scanning tunnelling microscopy (STM) experiments to verify the molecular structure of the C2N-h2D crystal.
Xue, J. et al. Scanning tunnelling microscopy and spectroscopy of ultra-flat graphene on hexagonal boron nitride.
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