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Determine the mass of Iron (III) oxide (Fe2O3) produced in the decomposition reaction of 100.0 grams of Iron (III) hydroxide (Fe(OH)3).

2Fe(OH)3(s)-1Fe2O3 (s) +3H2O (g)

User Peach
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2 Answers

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24 votes

Final answer:

To determine the mass of Iron (III) oxide produced in the decomposition reaction, use the stoichiometry of the balanced chemical equation and the given mass of Iron (III) hydroxide. First, calculate the moles of Fe(OH)3 using its molar mass. Then, use the stoichiometric mole ratio from the balanced equation to convert moles of Fe(OH)3 to moles of Fe2O3. Finally, multiply the moles of Fe2O3 by its molar mass to find the mass of Fe2O3 produced.

Step-by-step explanation:

To determine the mass of Iron (III) oxide produced in the decomposition reaction, we need to use the stoichiometry of the balanced chemical equation and the given mass of Iron (III) hydroxide. First, calculate the moles of Fe(OH)3 using its molar mass. Then, use the stoichiometric mole ratio from the balanced equation to convert moles of Fe(OH)3 to moles of Fe2O3. Finally, multiply the moles of Fe2O3 by its molar mass to find the mass of Fe2O3 produced.

Using the given balanced equation, we have:

2Fe(OH)3(s) → Fe2O3(s) + 3H2O(g)

Given mass of Fe(OH)3 = 100.0 g

Molar mass of Fe(OH)3 = 106.87 g/mol

Molar mass of Fe2O3 = 159.70 g/mol

First, calculate the moles of Fe(OH)3:

moles of Fe(OH)3 = mass of Fe(OH)3 / molar mass of Fe(OH)3

= 100.0 g / 106.87 g/mol

= 0.936 mol Fe(OH)3

Next, use the stoichiometric mole ratio from the balanced equation:

moles of Fe2O3 = moles of Fe(OH)3 × (1 mol Fe2O3 / 2 mol Fe(OH)3)

= 0.936 mol Fe(OH)3 × (1 mol Fe2O3 / 2 mol Fe(OH)3)

= 0.468 mol Fe2O3

Finally, calculate the mass of Fe2O3:

mass of Fe2O3 = moles of Fe2O3 × molar mass of Fe2O3

= 0.468 mol Fe2O3 × 159.70 g/mol

= 74.6 g Fe2O3

User Yugantar
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8 votes
8 votes

Answer: 77.47 g of
Fe_2O_3 will be produced from 100.0 g of Iron (III) hydroxide

Step-by-step explanation:

To calculate the moles :


\text{Moles of solute}=\frac{\text{given mass}}{\text{Molar Mass}}


\text{Moles of} Fe(OH)_3=(100.0g)/(106.9g/mol)=0.935moles

The balanced chemical equation is:


2Fe(OH)_3(s)\rightarrow Fe_2O_3(s)+3H_2O(g)

According to stoichiometry :

2 moles of
Fe(OH)_3 produce = 1 mole of
Fe_2O_3

Thus 0.935 moles of
Fe(OH)_3 will producee=
(1)/(2)* 0.935=0.468moles of
Fe_2O_3

Mass of
Fe_2O_3=moles* {\text {Molar mass}}=0.468moles* 159.7g/mol=74.74g

Thus 77.47 g of
Fe_2O_3 will be produced from 100.0 g of Iron (III) hydroxide

User Cometta
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