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Question

6×103 moles of K2Cr2O7 react completely with 9×103 moles of Xn+ to give XO3 and Cr3+. The value of n is :

A
1
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B
2
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C
3
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D
None of these
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Solution

The correct option is A 1
When we write the oxidation and reduction halves we find that
Cr is getting reduced from +6 to +3 and since there are two Cr ions so the n factor for Cr will be 6.
Similarly X will get oxidized from n to +5, so the n factor for X will be 5-n
We know that:
The number of equivalents of K2Cr2O7 = the number of equivalents of Xn+
So, moles of K2Cr2O7 × n factor of K2Cr2O7 = moles of Xn+ × n factor of Xn+
6×103×6=9×103(5n)
4=5n
n=1

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