Chemistry
2KClO3 2KCl + 3O2
(i) Calculate the mass of KClO3 required to produce 6.72 lit of O2 at s.t.p.
[K = 39, Cl = 35.5, O = 16]
(ii) Calculate the number of moles of O2 in the above volume and also the number of molecules.
Stoichiometry
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Answer
67.2 lit. of O2 is produced by 245 g of KClO3
∴ 6.72 lit of O2 will be obtained from x 6.72 = 24.5 g.
(ii) 22.4 lit = 1 mole
∴ 6.72 lit = x 6.72 = 0.3 moles
1 mole = 6.023 x 1023 molecules
∴ 0.3 moles = 0.3 x 6.023 x 1023 molecules.
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