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Q.What is order of reaction? Give one example each for 1st order and 2nd order reactions.

Jammu Kashmir JkboseJKBOSE Class 12 Annual Regular Examination 2021Subjective· 2mImportance★★★★★
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Order of reaction = sum of the exponents of concentration terms in the rate law, found experimentally, not from the balanced equation.

Order of reaction: For a reaction whose experimentally determined rate law is

Rate = k[A]^x[B]^y

the order of reaction is defined as the sum of the powers (exponents) of the concentration terms, x + y, that appear in this rate law. The order is an experimentally determined quantity (found from how the rate actually varies with concentration) and need not match the stoichiometric coefficients in the balanced chemical equation. It can be zero, a positive integer, a fraction, or even negative for an individual reactant.

Example of a first-order reaction: Decomposition of N2O5:

2N2O5 → 4NO2 + O2, Rate = k[N2O5] (order = 1). (Radioactive decay is another classic first-order process.)

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