Statement A: For a reaction A(g)→B(g)−rA=2.5 PA at 400 K−rA=2.5 PA at 600 Kactivation energy is 4135 J/mol. Statement B: Since for any reaction, values of rate constant at two different temperature is same therefore activation energy of the reaction is zero.
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a
Both Statement A and Statement B are true
b
Both Statement A and Statement B are false
c
Statement A is true but Statement B is false.
d
Statement A is false but Statement B is true.
answer is A.
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Detailed Solution
−rA=[2.5 R(400)]CA (at 400 K)−rA=[2.5 R(600)]CA (at 600 K)log(64)=Ea2.303R[1400−1600]Ea=4135j/molSo statements both are correct