NVAEasyJEE 2024Modern Periodic Table

JEE Chemistry 2024 Question with Solution

If the IUPAC name of an element is "Unununnium", then the element belongs to nnth group of the periodic table. The value of nn is:

Answer

Correct answer:11

Step-by-step solution

Standard Method

Given: The IUPAC name of the element is Unununnium.

Find: The value of nn, the group number of the element.

The systematic name is formed from the digits of the atomic number.

  • un \rightarrow 11
  • un \rightarrow 11
  • un \rightarrow 11

So the atomic number is

Z=111Z = 111

Thus the element is roentgenium.

To determine the group, use its electronic configuration. A possible configuration is

[Rn]7s25f146d9[Rn] \, 7s^2 \, 5f^{14} \, 6d^9

For a dd-block element, the group number is the sum of electrons in nsns and (n1)d(n-1)d.

Group Number=(electrons in ns)+(electrons in (n1)d)\text{Group Number} = (\text{electrons in } ns) + (\text{electrons in } (n-1)d)

Substituting the values,

Group Number=2+9=11\text{Group Number} = 2 + 9 = 11

Alternatively, with the more stable configuration

[Rn]7s15f146d10[Rn] \, 7s^1 \, 5f^{14} \, 6d^{10}

we get

Group Number=1+10=11\text{Group Number} = 1 + 10 = 11

Therefore, the element belongs to Group 1111.

So, the value of nn is 1111.

Using systematic naming roots

Given: The element name is Unununnium.

Find: The group number.

The numerical roots used in IUPAC temporary naming are:

  • 0=nil0 = \text{nil}
  • 1=un1 = \text{un}
  • 2=bi2 = \text{bi}
  • 3=tri3 = \text{tri}
  • 4=quad4 = \text{quad}
  • 5=pent5 = \text{pent}
  • 6=hex6 = \text{hex}
  • 7=sept7 = \text{sept}
  • 8=oct8 = \text{oct}
  • 9=enn9 = \text{enn}

In Unununnium, the roots are un-un-un, so the atomic number is 111111.

Element with Z=111Z = 111 lies in the dd-block of the 77th period. Its group is obtained from the outer configuration by adding the ss and dd electrons involved in bonding position.

Using

[Rn]7s25f146d9[Rn] \, 7s^2 \, 5f^{14} \, 6d^9

we get

11=2+911 = 2 + 9

Hence the element is in Group 1111.

Therefore, the required value is 1111.

Common mistakes

  • Reading Unununnium as a random name instead of decoding it into numerical roots. This is wrong because the IUPAC temporary name directly represents the atomic number. Decode un-un-un as 1111-1-1 first.

  • Confusing atomic number with group number. This is wrong because Z=111Z = 111 gives the identity of the element, not its group. After finding ZZ, determine the electronic configuration and then the group.

  • Using the wrong rule for group number in a dd-block element. This is wrong because the group is not taken from only the outermost shell. Add electrons in nsns and (n1)d(n-1)d to get the correct group.

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