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Scanning Electron Microscopy01:07

Scanning Electron Microscopy

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A scanning electron microscope (SEM) is used to study the surface features of a sample by using an electron beam that scans the sample surface in a two-dimensional manner. Typically, areas between ~1 centimeter to 5 micrometers in width can be imaged. SEM can be used to image bacteria, viruses, tissues as well as larger samples like insects. Conventional SEM gives a magnification ranging from 20X to 30,000X and spatial resolution of 50 to 100 nanometers.
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Atomic force microscopy (AFM) is a type of scanning probe microscopy that can analyze topographic details of various specimens like ceramics, glass, polymers, and biological samples. AFM offers over 1000 times more resolution than the optical imaging system. Images generated from AFM are three-dimensional surface profiles, offering an advantage over the flat, two-dimensional images from other imaging techniques.
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Atomic Structure01:33

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Atomic Mass01:52

Atomic Mass

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Atoms — and the protons, neutrons, and electrons that compose them — are extremely small. For example, a carbon atom weighs less than 2 × 10−23 g. When describing the properties of tiny objects such as atoms, we use appropriately small units of measure, such as the atomic mass unit (amu). The amu was originally defined based on hydrogen, the lightest element, then later in terms of oxygen. Since 1961, it has been defined with regard to the most abundant isotope of carbon, atoms of which...
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Atomic Orbitals02:44

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An atomic orbital represents the three-dimensional regions in an atom where an electron has the highest probability to reside. The radial distribution function indicates the total probability of finding an electron within the thin shell at a distance r from the nucleus. The atomic orbitals have distinct shapes which are determined by l, the angular momentum quantum number. The orbitals are often drawn with a boundary surface, enclosing densest regions of the cloud.
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Hybridization of Atomic Orbitals I03:24

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The mathematical expression known as the wave function, ψ, contains information about each orbital and the wavelike properties of electrons in an isolated atom. When atoms are bound together in a molecule, the wave functions combine to produce new mathematical descriptions that have different shapes. This process of combining the wave functions for atomic orbitals is called hybridization and is mathematically accomplished by the linear combination of atomic orbitals. The new orbitals that...
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Related Experiment Video

Updated: Jan 23, 2026

Probing C84-embedded Si Substrate Using Scanning Probe Microscopy and Molecular Dynamics
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Probing C84-embedded Si Substrate Using Scanning Probe Microscopy and Molecular Dynamics

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Atomic-Scale Insights into Electrode Surface Dynamics by High-Speed Scanning Probe Microscopy.

Olaf M Magnussen1

  • 1Institute of Experimental and Applied Physics, Kiel University, Olshausenstr. 40, 24098, Kiel, Germany.

Chemistry (Weinheim an Der Bergstrasse, Germany)
|June 8, 2019
PubMed
Summary

Video-rate scanning probe microscopy reveals dynamic atomic processes at electrode-liquid interfaces. This technique visualizes individual atom/molecule behavior and collective phenomena like self-assembly and surface restructuring during electrochemical reactions.

Keywords:
analytical methodselectrochemistryinterfacesscanning probe microscopysurface analysis

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Area of Science:

  • Electrochemistry
  • Surface Science
  • Materials Science

Background:

  • Electrochemical reactions involve atomic-scale processes at electrode surfaces.
  • Understanding electrode-electrolyte interfaces is crucial for reaction mechanisms.
  • In situ microscopy methods provide insights into interfacial structures.

Purpose of the Study:

  • To review in situ studies using video-rate scanning probe microscopy (SPM) techniques.
  • To highlight the observation of dynamic processes at electrode surfaces in liquid electrolytes.
  • To provide a comprehensive overview of recent advancements in time-resolved interfacial studies.

Main Methods:

  • Utilizing in situ scanning tunneling microscopy (STM) and atomic force microscopy (AFM).
  • Achieving millisecond time resolution to capture dynamic events.
  • Employing video-rate scanning probe microscopy for direct observation.

Main Results:

  • Quantitative data on the dynamic behavior of individual adsorbed atoms and molecules.
  • Complex dependence of adsorbate surface diffusion on electrode potential and co-adsorbed species.
  • Observation of collective dynamic phenomena including molecular self-assembly, nanoscale structure dynamics, nucleation, growth, and surface restructuring.

Conclusions:

  • Video-rate SPM enables direct observation of dynamic atomic-scale processes at electrode-liquid interfaces.
  • These studies provide unprecedented insights into adsorbate-substrate and adsorbate-adsorbate interactions.
  • The findings advance the understanding of fundamental electrochemical reaction mechanisms and interfacial dynamics.