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Question
An acid of phosphorus has the following percentage composition; Phosphorus = 38.27%; hydrogen = 2.47%; oxygen = 59.26%. Find the empirical formula of the acid and its molecular formula, given that its relative molecular mass is 162.
Solution
Element | % age | At. wt. | Atomic ratio | Simplest ratio |
P | 38.27 | 31 | `38.27/31` = 1.235 | `1.235/1.235` = 1 |
H | 2.47 | 1 | `2.47/1` = 2.47 | `2.47/1.235` = 2 |
O | 59.26 | 16 | `59.26/16` = 3.70 | `3.70/1.235` = 3 |
∴ The empirical formula of the given acid = H2PO3
Molecular mass of given acid = 162
Empirical formula mass of the acid = 2 × 1 + 31 + 3 × 16
= 2 + 31 + 48
= 81
∴ n = `"Molecular mass"/"Empirical formula mass"`
= `162/81`
= 2
∴ The molecular formula of the acid = (H2PO3)n
= (H2PO3)2
= H4P2O6
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