Amongst the following elements with their electronic configurations given below,which one has the highest ionization energy?

  • A
    $[Ne] 3s^2 3p^1$
  • B
    $[Ne] 3s^2 3p^3$
  • C
    $[Ne] 3s^2 3p^2$
  • D
    $[Ar] 3d^{10} 4s^2 4p^3$

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Similar Questions

The successive ionization energies of an element $(A)$ are given as $IE_1 = 20 \ eV, IE_2 = 45 \ eV, IE_3 = 150 \ eV, IE_4 = 900 \ eV, IE_5 = 1800 \ eV$. What is the formula of the halide of $(A)$?

Given below are two statements:
Statement $I$: The first ionization energy of $Pb$ is greater than that of $Sn$.
Statement $II$: The first ionization energy of $Ge$ is greater than that of $Si$.
In the light of the above statements,choose the correct answer from the options given below:

In a group of elements,as the atomic number increases,which of the following is $NOT$ observed?

Would you expect the first ionization enthalpies for two isotopes of the same element to be the same or different? Justify your answer.

The first ionization potential $(IP)$ of $Be$ $(Z=4)$ is higher than which of the following elements?
$(a) B (Z=5)$
$(b) Mg (Z=12)$
$(c) Li (Z=3)$
$(d) Al (Z=13)$
$(e) K (Z=19)$

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