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The oxidation of bromide ions is thought to occur by the following mechanism: H+ + HO HO+-OH (rapid equilibrium) HO-OH+ Br HOBr + HO (slow)

The oxidation of bromide ions is thought to occur by the following mechanism: H+ + HO HO+-OH (rapid equilibrium) HO-OH+ Br HOBr + HO (slow) HOBr+H*+ Br Br + HO (fast) Which of the following statements is correct? O Rate = k[HO][H+][Br] O The overall reaction equation is 2H + HO + 2Br Br + HO O H+ is a catalyst. O HO is a reaction intermediate

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