Which of the following isoelectronic ions has the lowest ionization energy?

  • A
    $K^{+}$
  • B
    $Cl^{-}$
  • C
    $Ca^{2+}$
  • D
    $S^{2-}$

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What are the various factors due to which the ionization enthalpy of the main group elements tends to decrease down a group?

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Correct increasing order of first ionisation potential is

The five successive ionization enthalpies of an element are $800, 2427, 3658, 25024$ and $32824 \ kJ \ mol^{-1}$. The number of valence electrons in the element is

Outermost electronic configurations of four elements $A, B, C, D$ are given below:
$A: 3s^{2}$
$B: 3s^{2} 3p^{1}$
$C: 3s^{2} 3p^{3}$
$D: 3s^{2} 3p^{4}$
The correct order of first ionization enthalpy for them is:

Which of the following represents the correct decreasing order of the first ionization enthalpy of $Ba, Sr, Ca,$ and $Mg$?

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