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  2. Perfect conductor - Wikipedia

    en.wikipedia.org/wiki/Perfect_conductor

    In electrostatics, a perfect conductor is an idealized model for real conducting materials. The defining property of a perfect conductor is that static electric field and the charge density both vanish in its interior. If the conductor has excess charge, it accumulates as an infinitesimally thin layer of surface charge. An external electric ...

  3. Optical conductivity - Wikipedia

    en.wikipedia.org/wiki/Optical_conductivity

    Optical conductivity is the property of a material which gives the relationship between the induced current density in the material and the magnitude of the inducing electric field for arbitrary frequencies. [1]

  4. Permittivity - Wikipedia

    en.wikipedia.org/wiki/Permittivity

    A perfect conductor has infinite conductivity, σ = ∞, while a perfect dielectric is a material that has no conductivity at all, σ = 0; this latter case, of real-valued permittivity (or complex-valued permittivity with zero imaginary component) is also associated with the name lossless media. [18]

  5. Interface conditions for electromagnetic fields - Wikipedia

    en.wikipedia.org/wiki/Interface_conditions_for...

    This is done by assuming conditions at the boundaries which are physically correct and numerically solvable in finite time. In some cases, the boundary conditions resume to a simple interface condition. The most usual and simple example is a fully reflecting (electric wall) boundary - the outer medium is considered as a perfect conductor.

  6. Drude model - Wikipedia

    en.wikipedia.org/wiki/Drude_model

    Conductors have a large density of free electrons whereas insulators do not; ions may be present in either. Given the good electrical and thermal conductivity in metals and the poor electrical and thermal conductivity in insulators, a natural starting point to estimate the thermal conductivity is to calculate the contribution of the conduction ...

  7. Gauss's law - Wikipedia

    en.wikipedia.org/wiki/Gauss's_law

    The electric field is perpendicular, locally, to the equipotential surface of the conductor, and zero inside; its flux πa 2 ·E, by Gauss's law equals πa 2 ·σ/ε 0. Thus, σ = ε 0 E. In problems involving conductors set at known potentials, the potential away from them is obtained by solving Laplace's equation, either analytically or ...

  8. Relative permittivity - Wikipedia

    en.wikipedia.org/wiki/Relative_permittivity

    where λ is the wavelength, c is the speed of light in vacuum and κ = μ 0 c / 2π = 59.95849 Ω ≈ 60.0 Ω is a newly introduced constant (units ohms, or reciprocal siemens, such that σλκ = ε r remains unitless).

  9. Electrical conductor - Wikipedia

    en.wikipedia.org/wiki/Electrical_conductor

    where is the length of the conductor, measured in metres [m], A is the cross-section area of the conductor measured in square metres [m 2], σ is the electrical conductivity measured in siemens per meter (S·m −1), and ρ is the electrical resistivity (also called specific electrical resistance) of the material, measured in ohm-metres (Ω·m ...