The electronic configuration of an element is $1 s^{2}$ $2 s^{2}$ $2 p^{6}$ $3 s^{2}$ $3 p^{4}$ . The atomic number and the group number of element 'X' (which is just below the said element in the periodic table) respectively are:

24 & 6

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34 & 6

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24 & 16

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34 & 16

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Solution

The correct option is D 34 & 16
Electronic configuration of an element: $1 s^{2}$ $2 s^{2}$ $2 p^{6}$ $3 s^{2}$ $3 p^{4}$ . As last electron is in p-subshell, the element is from p-block.

In p-block:
Group number = Number of valence electrons + 10
= (2+4) + 10
= 6+10
= 16
Atomic number = Number of electrons in electronic configuration
= 2 + 2 + 6 + 2 +4
= 16 ( i.e. sulphur)
But an element 'X' is first below the above element. So, group number will be the same, i.e., $16^{th}$ and atomic number = 16 + 18
= 34
So, X is Selenium (Se) with atomic number = 34
and group number = 16

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