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Question 99 of 100

Q.A chemical reaction occurs in two steps:

(i) NO2Cl(g)→slowNO2(g)+Cl(g)NO_2Cl_{(g)} \xrightarrow{slow} NO_{2(g)} + Cl_{(g)}
(ii) NO2Cl(g)+Cl(g)→fastNO2(g)+Cl2(g)NO_2Cl_{(g)} + Cl_{(g)} \xrightarrow{fast} NO_{2(g)} + Cl_{2(g)}.
(a) Write down the rate law.
(b) Identify the reaction intermediate.
Maharashtra MsbshseMaharashtra HSC (MSBSHSE) Board 2026Subjective· 2mImportance★★★★★
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The rate law is determined by the slow (rate-determining) step; Cl formed in step (i) and consumed in step (ii) is the intermediate.

(a) Rate law: The overall rate of a multi-step reaction is governed by the slowest step (the rate-determining step, RDS). Step (i), NO2Cl→slowNO2+ClNO_2Cl \xrightarrow{slow} NO_2 + Cl, is the slow step, and it is unimolecular in NO2ClNO_2Cl.

Rate=k[NO2Cl]Rate = k[NO_2Cl]

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