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Stoichiometry

If 1 1/2 mole...

Question

If $1 \frac{1}{2}$ moles of oxygen combine with Al to form $A l_{2} O_{3}$ , the weight of Al used in the reaction is: (atomic wt of Al = 27 u)

A

27 g

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B

54 g

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C

40.5 g

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D

81 g

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Solution

The correct option is B 54 g
The balanced chemical equation will be
$3 O_{2} + 4 A l ⟶ 2 A l_{2} O_{3}$
3 moles of $O_{2}$ combines with 4 moles of $A l$ . So $\frac{3}{2}$ moles of $O_{2}$ will combine with 2 mol of $A l$ .
Thus the weight of $A l$ will be $2 \times 27 = 54 g$

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1 \frac{1}{2}

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