For the second period elements,the correct increasing order of first ionisation enthalpy is:

  • A
    $Li < Be < B < C < N < O < F < Ne$
  • B
    $Li < B < Be < C < O < N < F < Ne$
  • C
    $Li < B < Be < C < N < O < F < Ne$
  • D
    $Li < Be < B < C < O < N < F < Ne$

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Similar Questions

Assertion : Element has a tendency to lose the electron$(s)$ to attain the stable configuration.
Reason : Ionization enthalpy is the energy released to remove an electron from an isolated gaseous atom in its ground state.

The electronic configurations of elements $A, B$ and $C$ are $[He] 2s^1$,$[Ne] 3s^1$ and $[Ar] 4s^1$ respectively. Which one of the following orders is correct for the first ionization potentials (in $kJ \ mol^{-1}$) of $A, B$ and $C$?

The first $I.E.$ of $Na, Mg, Al$ and $Si$ are in the order:

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Which of the following elements has the highest first ionization enthalpy?

Consider the elements $Ne$,$Na$,and $Mg$. The element with the highest first ionization enthalpy and the element with the lowest second ionization enthalpy,respectively,are:

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