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  2. Electronic band structure - Wikipedia

    en.wikipedia.org/wiki/Electronic_band_structure

    µ is the total chemical potential of electrons, or Fermi level (in semiconductor physics, this quantity is more often denoted E F). The Fermi level of a solid is directly related to the voltage on that solid, as measured with a voltmeter. Conventionally, in band structure plots the Fermi level is taken to be the zero of energy (an arbitrary ...

  3. Band diagram - Wikipedia

    en.wikipedia.org/wiki/Band_diagram

    Band diagram for semiconductor heterojunction at equilibrium. In solid-state physics of semiconductors, a band diagram is a diagram plotting various key electron energy levels (Fermi level and nearby energy band edges) as a function of some spatial dimension, which is often denoted x. [1] These diagrams help to explain the operation of many ...

  4. Fermi energy - Wikipedia

    en.wikipedia.org/wiki/Fermi_energy

    The Fermi energy is an important concept in the solid state physics of metals and superconductors. It is also a very important quantity in the physics of quantum liquids like low temperature helium (both normal and superfluid 3 He), and it is quite important to nuclear physics and to understanding the stability of white dwarf stars against ...

  5. Fermi level - Wikipedia

    en.wikipedia.org/wiki/Fermi_level

    The Fermi level of a solid-state body is the thermodynamic work required to add one electron to the body. It is a thermodynamic quantity usually denoted by μ or EF[1] for brevity. The Fermi level does not include the work required to remove the electron from wherever it came from. A precise understanding of the Fermi level—how it relates to ...

  6. Fermi–Dirac statistics - Wikipedia

    en.wikipedia.org/wiki/Fermi–Dirac_statistics

    Scientists. v. t. e. Fermi–Dirac statistics is a type of quantum statistics that applies to the physics of a system consisting of many non-interacting, identical particles that obey the Pauli exclusion principle. A result is the Fermi–Dirac distribution of particles over energy states. It is named after Enrico Fermi and Paul Dirac, each of ...

  7. Metal–semiconductor junction - Wikipedia

    en.wikipedia.org/wiki/Metal–semiconductor_junction

    The Fermi level pinning effect is strong in many commercially important semiconductors (Si, Ge, GaAs), [5] and thus can be problematic for the design of semiconductor devices. For example, nearly all metals form a significant Schottky barrier to n -type germanium and an ohmic contact to p -type germanium, since the valence band edge is strongly ...

  8. Mott–Schottky plot - Wikipedia

    en.wikipedia.org/wiki/Mott–Schottky_plot

    The vertical size of the barrier in the energy diagram corresponds to the built-in potential V bi. In the spatial axis the equilibration of Fermi levels produces a space charge region or depletion region of size w. A positive voltage applied to the back contact in (b) raises the Fermi level of electrons E Fn, and decreases the size of the ...

  9. Electronic properties of graphene - Wikipedia

    en.wikipedia.org/wiki/Electronic_properties_of...

    Electronic properties of graphene. Sigma and pi bonds in graphene. Sigma bonds result from an overlap of sp 2 hybrid orbitals, whereas pi bonds emerge from tunneling between the protruding p z orbitals. For clarity, only one p z orbital is shown with its three nearest neighbors. Graphene is a semimetal whose conduction and valence bands meet at ...