2KCIO3 - - - 2 KCI + 3O2

I want to produce 5.7 mol of O2. How many grams of KCIO3 should i start with?

3.8g KCIO3

698.54g KCIO3

5.7g KCIO3

465.69g KCIO3

We have to start with 465.69 grams of KClO3 (option 4 is correct)

Explanation:

Step 1: Data given

Moles of O2 = 5.7 moles

Molar mass KClO3 = 122.55 g/mol

Step 2: The balanced equation

2KCIO3 → 2KCI + 3O2

Step 3: Calculate moles KClO3

For 2 moles KClO3 we'll have 2 moles KCl and 3 moles O2

For 5.7 moles O2 we nee 2/3 * 5.7 = 3.8 moles KClO3

Step 4: Calculate mass of KClO3

Mass KClO3 = moles KClO3 * molar mass KClO3

Mass KClO3 = 3.8 moles * 122.55 g/mol

Mass KClO3 = 465.69 grams

We have to start with 465.69 grams of KClO3 (option 4 is correct)

465.69g KCIO3

Explanation:

See the stoichiometry in the reaction:

We can propose

3 moles of oxgen are made of 2 moles of chlorate

Therefore 5.70 moles of O₂ will be made by (5.70. 2) / 3 = 3.8 moles of chlorate.

We convert the moles to mass: 3.8 mol. 122.55 g / 1 mol = 465.69g KCIO3

is the mass to use in the begining