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A 1 g sample of KClO3 was heated under such conditions that a part of it decomposed according to the equation: (i) 2KClO3=2KCl+3O2 and the remaining underwent change according to the equation (ii) 4KClO3=3KClO4+KCl If the amount of O2 evolved was 146.8 mL at STP, calculate the mass of KClO4 produced. |
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Answer» A 1 g sample of KClO3 was heated under such conditions that a part of it decomposed according to the equation: (i) 2KClO3=2KCl+3O2 and the remaining underwent change according to the equation (ii) 4KClO3=3KClO4+KCl If the amount of O2 evolved was 146.8 mL at STP, calculate the mass of KClO4 produced. |
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