It is a second order reaction, first order both $$w.r.t\,{S_2}{O_8}^{2 - }$$ and $${I^ - }.$$
$$\therefore \,\,r = k\left[ {{S_2}{O_8}^{2 - }} \right]\left[ {{I^ - }} \right]$$
All other options are of first order reaction.
102.
A plot of $$\log \left( {a - x} \right)$$ against time $$t$$ is a straight line. This indicates that the reaction is of
First order reaction gives a straight line plot of $$\log \left( {a - x} \right)$$ and time.
103.
In a first order reaction, the concentration of reactant is reduced to $$\frac{1}{8}$$ of the initial concentration in 75 minutes at $$298\,K.$$ What is the half-life period of the reaction in minutes?
104.
In a hypothetical reaction $$X \to Y,$$ the activation energy for the forward and backward reactions are $$15$$ and $$9\,kJ\,mo{l^{ - 1}}$$ respectively. The potential energy of $$X$$ is $$10\,kJ\,mo{l^{ - 1}}.$$ Which of the following statements is/are correct?
(i) The threshold energy of the reaction is $$25\,kJ\,mo{l^{ - 1}}.$$
(ii) The potential energy of $$Y$$ is $$16\,kJ\,mo{l^{ - 1}}.$$
(iii) Heat of reaction is $$6\,kJ\,mo{l^{ - 1}}.$$
(iv) The reaction is endothermic.
The plot of activation energy versus reaction coordinates is given below for exothermic reaction.
It is clear from the above plot that the activation energy of reactant is less than the activation energy of products.
106.
In the reaction $$A \to B + C,$$ rate constant is $$0.001\,M{s^{ - 1}}.$$ If we start with $$1\,M$$ of $$A$$ then $$conc.$$ of $$A$$ and $$B$$ after 10 minuter are respectively.
107.
In the transformation of $$_{92}^{238}U$$ to $$_{92}^{234}U$$ , if one emission is an $$\alpha - $$ particle, what should be the other emission(s) ?
108.
The following mechanism has been proposed for the reaction of $$NO$$ with $$B{r_2}$$ to form $$NOBr$$ :
$$\eqalign{
& NO\left( g \right) + B{r_2}\left( g \right) \rightleftharpoons NOB{r_2}\left( g \right) \cr
& NOB{r_2}\left( g \right) + NO\left( g \right) \to 2NOBr\left( g \right) \cr} $$
If the second step is the rate determining step, the order of the reaction with respect to $$NO\left( g \right)$$ is
$$\eqalign{
& {\text{(i)}}\,NO\left( g \right) + B{r_2}\left( g \right) \rightleftharpoons NOB{r_2}\left( g \right) \cr
& {\text{(ii)}}\,NOB{r_2}\left( g \right) + NO\left( g \right) \to 2NOBr\left( g \right) \cr} $$
Rate law equation $$ = k\left[ {NOB{r_2}} \right]\left[ {NO} \right]$$
But $$NOB{r_2}$$ is intermediate and must not appear in the rate law equation
from 1st step $${K_C} = \frac{{\left[ {NOB{r_2}} \right]}}{{\left[ {NO} \right]\left[ {B{r_2}} \right]}}$$
$$\therefore \left[ {NOB{r_2}} \right] = {K_C}\left[ {NO} \right]\left[ {B{r_2}} \right]$$
∴ Rate law equation $$ = k.\,{K_C}{\left[ {NO} \right]^2}\left[ {B{r_2}} \right]$$
hence order of reaction is 2 $$w.r.t.$$ $$NO.$$
109.
Which of the following statements is not correct for the catalyst?
A
It catalyses the forward and backward reaction to the same extent.
B
It alters $$\Delta G$$ of the reaction.
C
It is a substance that does not change the equilibrium constant of a reaction.
D
It provides an alternate mechanism by reducing activation energy between reactants and products.
A catalyst does not alter Gibbs energy, $$\Delta G$$ of a reaction.
110.
In acidic medium, the rate of reaction between $$\left[ {BrO_3^ - } \right]$$ and $$\left[ {B{r^ - }} \right]$$ ions is given by the expression $$ - \frac{{d\left[ {BrO_3^ - } \right]}}{{dt}}$$ $$ = k\left[ {BrO_3^ - } \right]\left[ {B{r^ - }} \right]{\left[ {{H^ + }} \right]^2}$$
It means
(i) rate constant of the reaction depends upon the concentration of $${H^ + }$$ ions
(ii) rate of reaction is independent of the concentration of acid added
(iii) the change in $$pH$$ of the solution will affect the rate of reaction
(iv) doubling the concentration of $${{H^ + }}$$ ions will increase the reactions rate by 4 times.
(i) is wrong because rate constant does not depend upon the concentrations of the reactants.
(ii) is wrong because rate depends upon $${\left[ {{H^ + }} \right]^2}$$
(iii) is correct because change in $$pH$$ means change in $$\left[ {{H^ + }} \right]$$ ions
(iv) is correct because rate $$ \propto {\left[ {{H^ + }} \right]^2}.$$