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  2. Planck constant - Wikipedia

    en.wikipedia.org/wiki/Planck_constant

    The Planck constant, or Planck's constant, denoted by , [1] is a fundamental physical constant [1] of foundational importance in quantum mechanics: a photon's energy is equal to its frequency multiplied by the Planck constant, and the wavelength of a matter wave equals the Planck constant divided by the associated particle momentum.

  3. List of physical constants - Wikipedia

    en.wikipedia.org/wiki/List_of_physical_constants

    Planck constant: 6.626 070 15 × 10 −34 ... Stefan–Boltzmann constant: 5.670 374 419... × 10 −8 W⋅m −2 ⋅K ... While the values of the physical constants ...

  4. Planck units - Wikipedia

    en.wikipedia.org/wiki/Planck_units

    The Planck time, denoted t P, is defined as: = = This is the time required for light to travel a distance of 1 Planck length in vacuum, which is a time interval of approximately 5.39 × 10 −44 s. No current physical theory can describe timescales shorter than the Planck time, such as the earliest events after the Big Bang. [ 30 ]

  5. Stefan–Boltzmann law - Wikipedia

    en.wikipedia.org/wiki/Stefan–Boltzmann_law

    The Stefan–Boltzmann constant, σ, is derived from other known physical constants: = where k is the Boltzmann constant, the h is the Planck constant, and c is the speed of light in vacuum. [ 19 ] [ 4 ] : 388

  6. List of equations in quantum mechanics - Wikipedia

    en.wikipedia.org/wiki/List_of_equations_in...

    A fundamental physical constant occurring in quantum mechanics is the Planck constant, h. A common abbreviation is ħ = h /2 π , also known as the reduced Planck constant or Dirac constant . Quantity (common name/s)

  7. Planck relation - Wikipedia

    en.wikipedia.org/wiki/Planck_relation

    The Planck relation [1] [2] [3] (referred to as Planck's energy–frequency relation, [4] the Planck–Einstein relation, [5] Planck equation, [6] and Planck formula, [7] though the latter might also refer to Planck's law [8] [9]) is a fundamental equation in quantum mechanics which states that the energy E of a photon, known as photon energy, is proportional to its frequency ν: =.

  8. Natural units - Wikipedia

    en.wikipedia.org/wiki/Natural_units

    c, ħ, G, k B, where c is the speed of light, ħ is the reduced Planck constant, G is the gravitational constant, and k B is the Boltzmann constant. Planck units form a system of natural units that is not defined in terms of properties of any prototype, physical object, or even elementary particle.

  9. Particle in a box - Wikipedia

    en.wikipedia.org/wiki/Particle_in_a_box

    This can be seen in the following equation, where and are the effective masses of the electron and hole, is radius of the dot, and is the Planck constant: [23] = + (+) Hence, the energy gap of the quantum dot is inversely proportional to the square of the "length of the box", i.e. the radius of the quantum dot.