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Atomic orbitals quantum numbers
Atomic orbitals quantum numbers









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atomic orbitals quantum numbers

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  • According to Hund’s rule, no two electrons of the same atom can have exactly the same set of quantum numbers.
  • Spin quantum number is not related to Schrodinger equation.
  • The principal, azimuthal and magnetic quantum numbers are derived from the Schrodinger equation.
  • The possible values of m s are +1/2 and -1/2.
  • The spin quantum number describes the direction in which an electron is spinning when present in a doublet.
  • The value of ml ranges from -l to 0 to +l.
  • The magnetic quantum number determines the total number of orbitals in a subshell and their orientation.
  • It tells whether the electron is present in the s (l=0), p (l=1), d (l=2) or f (l=3) subshell.
  • The value of the azimuthal quantum number ranges between 0 to (n-1).
  • It describes the shape of the orbital in which the electron is present.
  • atomic orbitals quantum numbers atomic orbitals quantum numbers

    It is also known as the Orbital Angular Momentum Quantum Number.The value of n is always a positive integer. It cannot have a negative value or be zero.The principal quantum number indicates the energy shell of an electron.Quantum numbers are a set of numbers used to deduce an electron's energy and position.The correct answer is Azimuthal, Magnetic.











    Atomic orbitals quantum numbers