Determine the following regarding $I C l_{4}^{-}$

(i) Number of valance electrons in central atom
(ii) Number of Ligands
(iii) Anionic charge
(iv) Cationic charge

(i) - 6 ; (ii) - 5 ; (iii) - 1 ; (iv) - 0

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(i) - 7 ; (ii) - 7 ; (iii) - 1 ; (iv) - 0

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(i) - 6 ; (ii) - 5 ; (iii) - 0 ; (iv) - 1

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(i) - 7 ; (ii) - 4 ; (iii) - 1 ; (iv) - 0

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Solution

The correct option is D
(i) - 7 ; (ii) - 4 ; (iii) - 1 ; (iv) - 0

As we know,

$\Rightarrow$ The central atom is taken as which is least in number

Therefore, central atom is Iodine

Iodine is a halogen

The valance electrons will be 7

Now, we know the ligands are the atoms which are attached to the central atom.

Since, 4 chlorine atoms are attached to iodine (which is the central atom)

Therefore, number of Ligands = 4

Since, there is a negative charge on the compound.

Then we can say that

Anionic charge = 1 (negative)

Cationic charge = 0 (Because there is no positive charge)

That's why the correct option is (d)

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Similar questions

Determine the following regarding $I C l_{4}^{-}$

(i) Number of valance electrons in central atom
(ii) Number of Ligands
(iii) Anionic charge
(iv) Cationic charge

How should we find the number of electron pairs in a molecule like C2H2 using the formula (V+L+A-C)÷2.

WHERE V= VALENCE ELECTRONS,.

L=LIGANDS,.

A=ANIONIC CHARGE,

C=CATIONIC CHARGE,...???

Column - $I$	Column - $I I$
$(I) N_{2} O_{5} (s)$	$(P)$ Cation has $s p^{3} d^{2}$ hybridised central atom
$(I I) I C l_{3} (Molten)$	$(Q)$ Anion has square planar shape
$(I I I) P B r_{5} (s)$	$(R)$ Anion has trigonal planar shape
$(I V) X e F_{6} (s)$	$(S)$ Cation is linear
	$(T)$ Cation has tetrahedral shape