English

In a closed packed structure of mixed oxides, the oxide ions are arranged in hcp array. One eighth of tetrahedral voids are occupied by divalent cations (A) while one half of octahedral voids are - Chemistry (Theory)

Advertisements
Advertisements

Question

In a closed packed structure of mixed oxides, the oxide ions are arranged in hcp array. One eighth of tetrahedral voids are occupied by divalent cations (A) while one half of octahedral voids are occupied by trivalent cations (B). What is the formula of the compound?

Numerical
Advertisements

Solution

Given: Oxide ions (O2−) are in an hcp arrangement.

Divalent cation A occupies 1/8 of tetrahedral voids.

Trivalent cation B occupies 1/2 of octahedral voids.

In hcp arrangement:

Tetrahedral voids = 2 per O2− ion

Octahedral voids = 1 per O2− ion

Number of cations:

Cation A occupies `1/8`​ of tetrahedral voids = `1/8 xx 2 = 1/4` A ions

Cation B occupies `1/2`​ of octahedral voids = `1/2 xx 1 = 1/2` B ions

O2− ions = 1 (assumed)

So, A : B : O = `1/4 : 1/2 : 1`

Multiply all by 4 to get whole numbers,

A : B : O = 1 : 2 : 4

∴ The formula of the compound is AB2O4.

shaalaa.com
  Is there an error in this question or solution?
Chapter 1: Solid State - REVIEW EXERCISES [Page 22]

APPEARS IN

Nootan Chemistry Part 1 and 2 [English] Class 12 ISC
Chapter 1 Solid State
REVIEW EXERCISES | Q 1.14 | Page 22
Share
Notifications

Englishहिंदीमराठी


      Forgot password?
Use app×