CBSE Class 12 Chemistry 2017 Delhi Set 1 Solved Paper

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Question : 15 of 26
 
Marks: +1, -0
Following data are obtained for the reaction:
N2O5→2NO2+1∕2 O2
 t∕s  0  300  600
 [N2O5]∕molL−1  1.6×10−2  0.8×10−2  0.4×10−2

(a) Show that it follows first order reaction.
(b) Calculate the half-life.
(Given log2=0.3010,log4=0.6021)
Solution:
(a) For first order reaction the integral rate law is:
kt=ln(a0a1)
Given, a0=1.6×10−2molL−1
For t=300 s,at=0.8×10−2molL−1
For t=600 s,at=0.4×10−2molL−1
Using first set of data in the rate law,
k×300=ln1.6×10−20.8×10−2
k=0.00231 s−1
Using second set of data in the rate law,
k×600=ln1.6×10−20.4×10−2
k=0.00231 s−1
The value of k is consistent,therefore it follows first order reaction.
(b) The half-life of first order reaction is given by the following equation :
t1∕2=ln2k=2.303×log2k
∴t1∕2=2.303×log20.00231 =300.08 s.
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