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AITS & Test SerieshardNUMERICAL

Question

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Answer: 00072.00

💡 Solution & Explanation

n double bonds dissociate to form 2n single bond. H for polymerization of 1 mol of ethylene     C C C C n 2n H BE BE n n      =+590 – 2  331 = -72 kJ mol–1 = -72.00 kJ mol–1

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