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Exercises · 3.30

Q.Assign the position of the element having outer electronic configuration

(i) ns2np4ns^2 np^4 for n=3n=3
(ii) (n−1)d2ns2(n-1)d^2 ns^2 for n=4n=4, and
(iii) (n−2)f7(n−1)d1ns2(n-2)f^7 (n-1)d^1 ns^2 for n=6n=6, in the periodic table.
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The key is to decode the principal quantum number nn and the subshell block from the configuration, then locate the period, group, and block. (i) 3s23p43s^2 3p^4 → Period 3, Group 16, p-block (Sulfur).

(ii) 3d24s23d^2 4s^2 → Period 4, Group 4, d-block (Titanium).

(iii) 4f75d16s24f^7 5d^1 6s^2 → Period 6, Group 3 (or Lanthanide series), f-block (Gadolinium).


Concept First: How to Place an Element from Its Electronic Configuration

The periodic table is organised by electronic configuration — specifically, the outermost electrons determine the block, period, and group. Here’s the logic:

  • Period = the highest principal quantum number nn that appears in the configuration (the outermost shell).
  • Block = the subshell that receives the last electron (s, p, d, or f).
  • Group = depends on the block:
    • s-block: group = number of valence electrons (1 or 2).
    • p-block: group = 10 + number of valence electrons (since s + p electrons together count).
    • d-block: group = number of (n−1)d(n-1)d electrons + number of nsns electrons (usually 2, but watch for exceptions).
    • f-block: all elements in a given f-series (lanthanides or actinides) belong to Group 3, and the period is the nn of the nsns subshell.
Watch out

A common mistake: For d-block, the group is not simply the number of d-electrons. You must add the s-electrons too. For example, 3d24s23d^2 4s^2 gives group 2+2=42+2=4, not 2.

Now let’s apply this step by step.


(i) ns2np4ns^2 np^4 for n=3n=3

Step 1: Identify the period.

n=3n=3 means the outermost shell is the third shell. So the element lies in Period 3.

Step 2: Identify the block.

The last electron enters the pp subshell (3p43p^4). Hence it is a p-block element.

Step 3: Find the group.

For p-block elements:

Group number = 10+(number of valence electrons)10 + \text{(number of valence electrons)}

Valence electrons = ns2+np4=2+4=6ns^2 + np^4 = 2 + 4 = 6

So group = 10+6=1610 + 6 = 16.

Step 4: Name the element.

Period 3, Group 16 → Sulfur (S).

Tip

A quick check: The configuration 3s23p43s^2 3p^4 is exactly that of sulfur. You can also recall that group 16 elements (chalcogens) have the general outer configuration ns2np4ns^2 np^4.


(ii) (n−1)d2ns2(n-1)d^2 ns^2 for n=4n=4

Step 1: Identify the period.

Here n=4n=4, so the outermost shell is the fourth shell. The element is in Period 4.

Step 2: Identify the block.

The last electron enters the (n−1)d(n-1)d subshell, i.e., 3d3d (since n−1=3n-1=3). So it is a d-block element (transition metal).

Step 3: Find the group.

For d-block elements:

Group number = number of (n−1)d(n-1)d electrons + number of nsns electrons

Here: 3d23d^2 and 4s24s^2 → 2+2=42 + 2 = 4.

So group = 4.

Step 4: Name the element.

Period 4, Group 4 → Titanium (Ti). …

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