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Chemistry

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 it's molecular formula, given that it's relative molecular mass is 162.

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Answer

Element% compositionAt. wt.Relative no. of atomsSimplest ratio
Phosphorus38.273138.2731\dfrac{38.27 }{31} = 1.2341.2341.234\dfrac{ 1.234}{1.234 } = 1
Hydrogen2.4712.471\dfrac{2.47 }{1} = 2.472.471.234\dfrac{2.47 }{1.234 } = 2
Oxygen59.261659.2616\dfrac{59.26}{16} = 3.703.701.234\dfrac{3.70}{ 1.234 } = 3

Simplest ratio of whole numbers = P : H : O = 1 : 2 : 3

Hence, empirical formula is H2PO3

Empirical formula weight = 31 + 2(1) + 3(16) = 31 + 2 + 48 = 81

Molecular weight = 162

n=Molecular weightEmpirical formula weight=16281=2\text{n} = \dfrac{\text{Molecular weight}}{\text{Empirical formula weight}} \\[0.5em] = \dfrac{162}{81} = 2

So, molecular formula = 2(H2PO3) = H4P2O6

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