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0.05mo(l)/(d)m^(3) in A and 0.07mo(l)/(d)m^(3) in B. After 2.0h the concentration of A had fallen to 0.010 mo(l)/(d)m^(3) . Calculate the rate constant k with
0.05mo(l)/(d)m^(3)
in A and
0.07mo(l)/(d)m^(3)
in B. After
2.0h
the concentration of A had fallen to 0.010
mo(l)/(d)m^(3)
. Calculate the rate constant
k
with unit
dm^(3)mol^(-1)s^(-1)
. Please enter your answer with 2 significant figures. Hint: this is a second-order type II reaction, find the integrated rate law in lecture note.
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