Chemical Kinetics

56 Questions
2025 TS-EAMCET MCQ
TG EAPCET 2025 (Online) 4th May Evening Shift

$A \rightarrow P$ is a first order reaction. At 300 K this reaction was started with $[A]=0.5 \mathrm{~mol} \mathrm{~L}^{-1}$.

The rate constant of reaction was $0.125 \mathrm{~min}^{-1}$. The same reaction was started separately with $[A]=1 \mathrm{molL}^{-1}$ at 300 K . The rate constant (in $\mathrm{min}^{-1}$ ) now is

A.

0.25

B.

0.50

C.

0.125

D.

1.00

2025 TS-EAMCET MCQ
TG EAPCET 2025 (Online) 4th May Morning Shift

$R \rightarrow P$ is a first order reaction. For this reaction a graph of $\ln [R]$ (on $y$-axis) and time (on x -axis) gave a straight line with negative slope. The intercept on $y$-axis is equal to ( $k=$ rate constant)

A.

$\ln [R]_0$

B.

$[R]_0$

C.

$k \times 2.303$

D.

$\frac{k}{2.303}$

2025 TS-EAMCET MCQ
TG EAPCET 2025 (Online) 3rd May Evening Shift

The half-life of a zero order reaction $A \rightarrow$ products, is 0.5 hour. The initial concentration of $A$ is $4 \mathrm{molL}^{-1}$.

How much time (in hr ) does it take for its concentration to come from $2.0 \mathrm{~mol} \mathrm{~L}^{-1}$ to $1.0 \mathrm{~mol} \mathrm{~L}^{-1}$ ?

A.

$1 / 4$

B.

$\frac{1}{8}$

C.

$1 / 2$

D.

$1 / 6$

2025 TS-EAMCET MCQ
TG EAPCET 2025 (Online) 3rd May Morning Shift

For a first order decomposition of a certain reaction, rate constant is given by the equation. $\log k\left(s^{-1}\right)=7.14-\frac{1 \times 10^4 \mathrm{~K}}{T}$. The activation energy of the reaction ( in $\mathrm{kJ} \mathrm{mol}^{-1}$ ) is

$ \left(R=8.3 \mathrm{JK}^{-1} \mathrm{~mol}^{-1}\right) $

A.

161.1

B.

171.1

C.

181.1

D.

191.1

2025 TS-EAMCET MCQ
TG EAPCET 2025 (Online) 2nd May Evening Shift

Consider a general first order reaction,

$ A(g) \longrightarrow B(g)+C(g) $

If the initial pressure is 200 mm and after 20 minutes it is 250 mm , then the half-life period of the reaction (in minutes) is ( $\log 2=0.30, \log 3=0.48, \log 4=0.60$ )

A.

40.2

B.

50.2

C.

20.5

D.

60.5

2025 TS-EAMCET MCQ
TG EAPCET 2025 (Online) 2nd May Morning Shift

For the reaction $R \rightarrow P$, half life is independent of initial concentration of the reactant, $R$. Which one of the following graphs is not correct for the reaction?

A.
TG EAPCET 2025 (Online) 2nd May Morning Shift Chemistry - Chemical Kinetics Question 20 English Option 1
B.
TG EAPCET 2025 (Online) 2nd May Morning Shift Chemistry - Chemical Kinetics Question 20 English Option 2
C.
TG EAPCET 2025 (Online) 2nd May Morning Shift Chemistry - Chemical Kinetics Question 20 English Option 3
D.
TG EAPCET 2025 (Online) 2nd May Morning Shift Chemistry - Chemical Kinetics Question 20 English Option 4
2025 AP-EAPCET MCQ
AP EAPCET 2025 - 26th May Morning Shift

$R \longrightarrow P$ is a first order reaction. The concentration of $R$ changed from 0.04 to $0.03 \mathrm{molL}^{-1}$ in 40 min . What is the average velocity of the reaction in $\mathrm{mol} \mathrm{L}^{-1} \mathrm{~s}^{-1}$ ?

A.

$2.5 \times 10^{-4}$

B.

$4.167 \times 10^{-6}$

C.

$4.167 \times 10^6$

D.

$2.5 \times 10^{-5}$

2025 AP-EAPCET MCQ
AP EAPCET 2025 - 27th May Morning Shift

For a reaction, the graph of $\ln k$ (on $y$-axis) and $\frac{1}{T}$ (on $x$-axis) is a straight line with a slope $-2 \times 10^4 \mathrm{~K}$. The activation energy of the reaction (in $\mathrm{kJ} \mathrm{mol}^{-1}$ ) is ( $R=8.3 \mathrm{JK}^{-1} \mathrm{~mol}^{-1}$ )

A.

332

B.

432

C.

166

D.

216

2025 AP-EAPCET MCQ
AP EAPCET 2025 - 26th May Evening Shift

The following graph is obtained for a first order reaction $(A \rightarrow P)$. The activation energy ( $E_a$ in $\left.\mathrm{kJ} \mathrm{mol}^{-1}\right)$ and heat of reaction $\left(|\Delta H|\right.$ in $\left.\mathrm{kJ} \mathrm{mol}^{-1}\right)$ for this reaction are respectively

$\left(x=\right.$ reaction coordinate; $y=E$ in $\left.\mathrm{kJ} \mathrm{mol}^{-1}\right)$

AP EAPCET 2025 - 26th May Evening Shift Chemistry - Chemical Kinetics Question 2 English

A.

5,15

B.

15,5

C.

25,5

D.

10,25

2025 AP-EAPCET MCQ
AP EAPCET 2025 - 24th May Morning Shift

For a first order reaction, the ratio between the time taken to complete $\frac{3}{4}$ th of the reaction and time taken to complete half of the reaction is

A.

2

B.

3

C.

1.5

D.

2.5

2025 AP-EAPCET MCQ
AP EAPCET 2025 - 23rd May Evening Shift

The following equation is obtained for a first order reaction at 300 K

$ \log _{10} \frac{k}{A}=0.00174 $

What is the activation energy (in $\mathrm{J} \mathrm{mol}^{-1}$ ) of the reaction?

$ \left(R=8314 \mathrm{~J} \mathrm{~mol}^{-1} \mathrm{~K}^{-1}\right) $

A.

10.0

B.

100.0

C.

0.1

D.

1.0

2025 AP-EAPCET MCQ
AP EAPCET 2025 - 23rd May Morning Shift
$A \rightarrow B$ is a first order reaction. The concentration of $A$ is decreased from $x \mathrm{~mol} \mathrm{~L}^{-1}$ to $y \mathrm{~mol} \mathrm{~L}^{-1}$ in 100 min . What is the average velocity of the reaction in $\mathrm{mol} \mathrm{L}^{-1} \min ^{-1}$ ?
A.

$\frac{|x-y|}{100}$

B.

$\frac{|y-x|^2}{100}$

C.

$\frac{100}{|x-y|}$

D.

$\frac{100}{|x+y|}$

2025 AP-EAPCET MCQ
AP EAPCET 2025 - 22nd May Evening Shift

In a first order reaction, the concentration of the reactant is reduced to $1 / 8$ of the initial concentration in 75 minutes. The $t_{1 / 2}$ of the reaction (in minutes) is $(\log 2=0.30, \log 3=0.47, \log 4=0.60)$

A.

60.2

B.

50.2

C.

25.1

D.

75.1

2025 AP-EAPCET MCQ
AP EAPCET 2025 - 22nd May Morning Shift

At $T(\mathrm{~K})$ the following equation is obtained for a first order reaction $\log \frac{k}{A}=-\frac{x}{T}$. The activation energy for this reaction is equal to ( $R=$ gas constant)

A.

$2.303 \times R$

B.

$\frac{2.303 R}{x}$

C.

$\frac{x}{2.303 R}$

D.

$\frac{1}{2.303 \times R}$

2025 AP-EAPCET MCQ
AP EAPCET 2025 - 21st May Evening Shift

Consider the reaction given below

$ A+2 B \longrightarrow 3 C+2 D $

If rate of disappearance of $B$ is $x \times 10^{-2} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1}$, the ratio of rate of reaction and rate of appearance of $C$ is

A.

$1: 3$

B.

$3: 1$

C.

$1: 2$

D.

$2: 1$

2025 AP-EAPCET MCQ
AP EAPCET 2025 - 21st May Evening Shift

Activation energy for the hydrolysis of sucrose by acid is $X \mathrm{~kJ} \mathrm{~mol}^{-1}$ whereas activation energy for the hydrolysis of sucrose by sucrase is $Y \mathrm{~kJ} \mathrm{~mol}^{-1} . X$ and $Y$ respectively are

A.

$6.22,2.15$

B.

$2.15,6.22$

C.

$6.22,6.22$

D.

$2.15,2.15$

2025 AP-EAPCET MCQ
AP EAPCET 2025 - 21st May Morning Shift

$A \rightarrow$ products, is a first order reaction. The following data is obtained for this reaction at $T(\mathrm{~K})$. The value of $x: y$ is

$ \begin{array}{cc} \hline \text { Rate }\left(\mathrm{molL}^{-1} \mathrm{~min}^{-1}\right) & {[A]} \\ \hline 0.2 & 0.02 \mathrm{M} \\ \hline 0.4 & x \mathrm{M} \\ \hline 1.0 & y \mathrm{M} \\ \hline \end{array} $

A.

$1: 5$

B.

$2: 3$

C.

$5: 2$

D.

$2: 5$

2024 TS-EAMCET MCQ
TG EAPCET 2024 (Online) 11th May Morning Shift

For the gaseous reaction, $\mathrm{N}_{2} \mathrm{O}_{5} \longrightarrow 2 \mathrm{NO}_{2}+\frac{1}{2} \mathrm{O}_{2}$

the rate can be expressed as

$ \begin{array}{l} -\frac{d\left[\mathrm{~N}_{2} \mathrm{O}_{5}\right]}{d t}=K_{1}\left[\mathrm{~N}_{2} \mathrm{O}_{5}\right] \\\\ +\frac{d\left[\mathrm{NO}_{2}\right]}{d t}=K_{2}\left[\mathrm{~N}_{2} \mathrm{O}_{5}\right] \\\\ +\frac{d\left[\mathrm{O}_{2}\right]}{d t}=K_{3}\left[\mathrm{~N}_{2} \mathrm{O}_{5}\right] \end{array} $

The correct relation between $K_{1}, K_{2}$ and $K_{3}$

A.
$K_{1}=2 K_{2}=4 K_{3}$
B.
$2 K_{1}=K_{2}=4 K_{3}$
C.
$2 K_{1}=3 K_{2}=4 K_{3}$
D.
$4 K_{1}=2 K_{2}=K_{3}$
2024 TS-EAMCET MCQ
TG EAPCET 2024 (Online) 10th May Evening Shift
For a first order reaction, the graph between $\log \frac{a}{(a-x)}$ (on $y$-axis) and time (in min, on $x$-axis) gave a straight line passing through origin. The slope is $2 \times 10^{-3} \mathrm{~min}^{-1}$. What is the rate constant (in $\mathrm{min}^{-1}$ )?
A.
$2 \times 10^{-3}$
B.
$\frac{2 \times 10^{-3}}{2.303}$
C.
$4.606 \times 10^{-3}$
D.
$0.5 \times 10^{-5}$
2024 TS-EAMCET MCQ
TG EAPCET 2024 (Online) 10th May Morning Shift
The decomposition of benzene diazonium chloride is a first order reaction. The time taken for its decomposition to $\frac{1}{4}$ and $\frac{1}{10}$ of its initial concentration are $t_{\frac{1}{4}}$ and $t_{\frac{1}{4}}^{10}$ respectively. The value of $\frac{t_{\frac{1}{4}}^4}{t_1} \times 100$ is (Give: $\log 2=0.3$ )
A.
60
B.
30
C.
90
D.
45
2024 TS-EAMCET MCQ
TG EAPCET 2024 (Online) 9th May Evening Shift
Consider the gaseous reaction, $ A_2+B_2 \longrightarrow 2 A B $ The following data was obtained for the above reaction.
[A₂]₀ [B₂]₀ Initial rate of formation of AB (mol L⁻¹ s⁻¹)
0.1 M 0.1 M 2.5 × 10⁻⁴
0.2 M 0.1 M 5.0 × 10⁻⁴
0.2 M 0.1 M 1.0 × 10⁻³
The value of rate constant for the above reaction is
A.
$1.25 \times 10^{-2}$
B.
$1.25 \times 10^{-3}$
C.
$2.5 \times 10^{-2}$
D.
$2.5 \times 10^{-1}$
2024 TS-EAMCET MCQ
TG EAPCET 2024 (Online) 9th May Morning Shift
For a first order reaction, a plot of $\ln k\left(Y\right.$-axis) and $\frac{1}{T}$ $(X$-axis) gave the straight line with slope equal to $-10^3 \mathrm{~K}$ and intercept equal to 2.303 ( on $Y$-axis). What is the activation energy ( $E_a$ in $\mathrm{kJ} \mathrm{mol}^{-1}$ ) of the reaction? (Given, $R=8314 \mathrm{JK}^{-1} \mathrm{~mol}^{-1}$ )
A.
8.314
B.
2.303
C.
2303
D.
83.14
2024 AP-EAPCET MCQ
AP EAPCET 2024 - 23th May Morning Shift
$A \rightarrow P$ is a first order reaction. The following graph is obtained for this reaction. $(X$-axis $=$ time: $Y$-axis $=$ conc. of $A$ ) The instantaneous rate of the reaction at point $C$ is AP EAPCET 2024 - 23th May Morning Shift Chemistry - Chemical Kinetics Question 12 English
A.
$\frac{1}{m}$
B.
$m$
C.
2.303 m
D.
$\frac{1}{2.303 m}$
2024 AP-EAPCET MCQ
AP EAPCET 2024 - 22th May Evening Shift
The rate constant of a first order reaction was doubled when the temperature was increased from 300 to 310 K . What is its approximate activation energy (in $\mathrm{kJ} \mathrm{mol}^{-1}$ )? ( $R=8.3 \mathrm{Jmol}^{-1} \mathrm{~K}^{-1}: \log 2=0.3$ )
A.
5.33
B.
533.3
C.
53333
D.
53.33
2024 AP-EAPCET MCQ
AP EAPCET 2024 - 22th May Morning Shift

Isomerisation of gaseous cyclobutene to butadiene is first order reaction. At $T(\mathrm{~K})$. The rate constant of reaction is $33 \times 10^{-4} \mathrm{~s}^{-1}$. What is the time required (in min ) to complete $90 \%$ of this reaction at the temperature? $(\log 2=03)$

A.
116.67
B.
233.34
C.
58.34
D.
350.0
2024 AP-EAPCET MCQ
AP EAPCET 2024 - 21th May Evening Shift
$A \rightarrow P$ is a zero order reaction. At 298 K the rate constant of the reaction is $1 \times 10^{-3} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1}$. Initial concentration of ' $A$ ' is $0.1 \mathrm{~mol} \mathrm{~L}^{-1}$. What is the concentration of ' $A$ after 10 sec ?
A.
$0.09 \mathrm{~mol} \mathrm{~L}^{-1}$
B.
$0.099 \mathrm{~mol} \mathrm{~L}^{-1}$
C.
$0.087 \mathrm{~mol} \mathrm{~L}^{-1}$
D.
$0.011 \mathrm{~mol} \mathrm{~L}^{-1}$
2024 AP-EAPCET MCQ
AP EAPCET 2024 - 21th May Morning Shift
The rate constant of a first order reaction is $3.46 \times 10^{-2} \mathrm{~s}^{-1}$ at 298 K . What is the rate constant of the reaction at 350 K if its activation energy is $50.1 \mathrm{~kJ} \mathrm{~mol}^{-1}$, $\left(R=8.314 \mathrm{JK}^{-1} \mathrm{~mol}^{-1}\right)(\log 2=0.3010)$
A.
$0.592 \mathrm{~s}^{-1}$
B.
$0.692 \mathrm{~s}^{-1}$
C.
$0.792 \mathrm{~s}^{-1}$
D.
$0.892 \mathrm{~s}^{-1}$
2024 AP-EAPCET MCQ
AP EAPCET 2024 - 20th May Evening Shift
At 298 K the value of $-\frac{\Delta\left[\mathrm{Br}^{-}\right]}{\Delta t}$ for the reaction,

$5 \mathrm{Br}^{-}(a q)+\mathrm{BrO}_3^{-}(a q)+6 \mathrm{H}^{+}(a q) \longrightarrow 3 \mathrm{Br}_2(a q)+3 \mathrm{H}_2 \mathrm{O}(l)$ is $X$ $\mathrm{mol} \mathrm{L} \mathrm{min}^{-1}$. What is the rate (in $\mathrm{mol} \mathrm{L}^{-1} \mathrm{~min}^{-1}$ ) of this reaction?
A.
$5 x$
B.
$x$
C.
$\frac{x}{5}$
D.
$-\frac{x}{5}$
2024 AP-EAPCET MCQ
AP EAPCET 2024 - 20th May Morning Shift

For a first order reaction the concentration of reactant was reduced from $0.03 \mathrm{molL}^{-1}$ to $0.02 \mathrm{molL}^{-1}$ in 25 min . What is its rate (in $\mathrm{molL}^{-1} \mathrm{~s}^{-1}$ )?

A.
$6.667 \times 10^{-6}$
B.
$4 \times 10^{-4}$
C.
$6.667 \times 10^{-4}$
D.
$4 \times 10^{-6}$
2024 AP-EAPCET MCQ
AP EAPCET 2024 - 19th May Evening Shift
The first order reaction, $A(g) \rightarrow B(g)+2 C(g)$ occurs at $25^{\circ} \mathrm{C}$. After 24 minutes the ratio of the concentration of products to the concentration of the reactant is $1: 3$ What is the half life is of the reaction (in min )? $\log 1.11=0.046$
A.
150.5
B.
142.2
C.
157.8
D.
15.78
2024 AP-EAPCET MCQ
AP EAPCET 2024 - 19th May Evening Shift
Identify the autocatalytic reaction from the following
A.
$\mathrm{N}_2(g)+3 \mathrm{H}_2(g) \xrightarrow[\mathrm{Mo}(\mathrm{s})]{\mathrm{Fe}(\mathrm{s})} 2 \mathrm{NH}_3(g)$
B.
$2 \mathrm{KClO}_3(\mathrm{~s}) \xrightarrow{\mathrm{MnO}_2} 2 \mathrm{KCl}(\mathrm{s})+3 \mathrm{O}_2$
C.
$\mathrm{CH}_3 \mathrm{COOC}_2 \mathrm{H}_5+\mathrm{H}_2 \mathrm{O} \longrightarrow \mathrm{CH}_3 \mathrm{COOH}+\mathrm{C}_2 \mathrm{H}_5 \mathrm{OH}$
D.
$\mathrm{AgNO}_3(\mathrm{aq})+\mathrm{KCl}(\mathrm{aq}) \longrightarrow \mathrm{AgCl}(\mathrm{s})+\mathrm{KNO}_3(\mathrm{aq})$
2024 AP-EAPCET MCQ
AP EAPCET 2024 - 18th May Morning Shift
At 298 K , for a first order resction $(A \rightarrow P)$ the following graph is obtained. The rate constant ( in s ${ }^{-1}$ ) and initial concentration ( in mol $\mathrm{L}^{-1}$ ) of ' $A$ ' are respectively $(Y$-axis $=\ln (a-x): X$-axis $=$ time in sec)

AP EAPCET 2024 - 18th May Morning Shift Chemistry - Chemical Kinetics Question 19 English

A.
$2.303,10^{-1}$
B.
$10^{-2} ; 2303$
C.
$10^{-1} ; 10^{-2}$
D.
$10^{-2}: 10^{-1}$
2023 TS-EAMCET MCQ
TS EAMCET 2023 (Online) 14th May Evening Shift

A possible mechanism for the gaseous reaction $2 \mathrm{H}_2+2 \mathrm{NO} \longrightarrow 2 \mathrm{H}_2 \mathrm{O}+\mathrm{N}_2$ is

Step 1:2 $\mathrm{NO} \rightleftharpoons \mathrm{N}_2 \mathrm{O}_2$

Step 2 : $\mathrm{N}_2 \mathrm{O}_2+\mathrm{H}_2 \longrightarrow \mathrm{~N}_2 \mathrm{O}+\mathrm{H}_2 \mathrm{O}$ (slow)

Step 3: $\mathrm{N}_2 \mathrm{O}+\mathrm{H}_2 \longrightarrow \mathrm{~N}_2+\mathrm{H}_2 \mathrm{O}$

The rate law for this reaction is

A.

$R=k[\mathrm{NO}]^2\left[\mathrm{H}_2\right]^2$

B.

$R=k[\mathrm{NO}]\left[\mathrm{H}_2\right]^2$

C.

$R=k[\mathrm{NO}]^{1 / 2}\left[\mathrm{H}_2\right]$

D.

$R=k[\mathrm{NO}]^2\left[\mathrm{H}_2\right]$

2023 TS-EAMCET MCQ
TS EAMCET 2023 (Online) 14th May Morning Shift

The rate law for the decomposition of hydrogen iodide is $-\frac{d[\mathrm{HI}]}{d t}=k[\mathrm{HI}]^2$. The units of rate constant $k$ are

A.

$\mathrm{L} \mathrm{mol}^{-1} \mathrm{~s}^{-1}$

B.

$\mathrm{L}^{-1} \mathrm{~mol} \mathrm{~s}^{-1}$

C.

$\mathrm{L}^2 \mathrm{~mol}^{-2} \mathrm{~s}^{-1}$

D.

$\mathrm{L}^{1 / 2} \mathrm{~mol}^{-1 / 2} \mathrm{~s}^{-1}$

2023 TS-EAMCET MCQ
TS EAMCET 2023 (Online) 13th May Evening Shift

For a zero order reaction $A \rightarrow$ product, a plot of $[A]$ (on $y$-axis) and time (on $x$-axis) gave a straight line with slope equal to $-3 \times 10^{-3} \mathrm{M} \mathrm{min}^{-1}$ and intercept equal to $2 \times 10^{-2} \mathrm{M}$ (on y -axis). What is the rate constant (in M $\mathrm{min}^{-1}$ ) of this reaction?

A.

$3 \times 10^{-3}$

B.

$5 \times 10^{-5}$

C.

$3 \times 10^{-4}$

D.

$5 \times 10^{-4}$

2023 TS-EAMCET MCQ
TS EAMCET 2023 (Online) 13th May Morning Shift

The rate of a first order reaction doubles when the temperature changes from 300 K to 310 K . The activation energy of the reaction (in $\mathrm{kJ} \mathrm{mol}^{-1}$ ) is ( $R=8.3 \mathrm{JK}^{-1} \mathrm{~mol}^{-1}, \log 2=0.3$ )

A.

43.33

B.

53.33

C.

63.33

D.

73.33

2023 TS-EAMCET MCQ
TS EAMCET 2023 (Online) 12th May Evening Shift

The graph obtained between $\ln k$ ( $k=$ rate constant) on $y$-axis and $1 / T$ on $x$-axis is a straight line. The slope of it is $-4 \times 10^4 \mathrm{~K}$. The activation energy of the reaction (in $\left.\mathrm{kJ} \mathrm{mol}^{-1}\right)$ is $\left(R=831 \mathrm{~J} \mathrm{~K}^{-1} \mathrm{~mol}^{-1}\right)$

A.
166
B.
332
C.
765
D.
382
2023 TS-EAMCET MCQ
TS EAMCET 2023 (Online) 12th May Morning Shift
If benzene diazonium chloride undergoes first order decomposition at $T(\mathrm{~K})$ with a rate constant of $6.93 \times 10^{-2} \mathrm{~min}^{-1}$, the time for completion of $90 \%$ of the reaction (in min ) is (nearest integer) $(\log 2=0.30$, $\log 3=0.477$ )
A.
15
B.
30
C.
33
D.
43
2022 TS-EAMCET MCQ
TS EAMCET 2022 (Online) 20th July Evening Shift

For a reaction, the threshold energy is $75 \mathrm{~kJ} /$ mole. If the internal energy of the reactants is 20 $\mathrm{kJ} /$ mole, the activation energy (in $\mathrm{kJ} /$ mole) is

A.

55

B.

20

C.

75

D.

95

2022 TS-EAMCET MCQ
TS EAMCET 2022 (Online) 20th July Morning Shift
  1. Rate constants in the following reaction are Reaction 1 :

$ A \xrightarrow{\text { Catalyst } 1} P_1, k_1=1 \mathrm{~s}^{-1} $

Reaction 2 :

$ A \xrightarrow{\text { Catalyst } 2} P_2, k_2=0.1 \mathrm{~L} \mathrm{~mol}^{-1} \mathrm{~s}^{-1} $

Reaction 3 :

$ A \xrightarrow{\text { Catalyst } 3} P_3, k_3=0.01 \mathrm{~L} \mathrm{~mol}^{-1} \mathrm{~s}^{-1} $

The correct relations between the rate of the reactions at 1 M of $A$ are

A.

$r_1=\frac{r_3}{100}, r_2=\frac{r_3}{10}$

B.

$r_1=\frac{r_2}{10}, r_2=\frac{r_3}{10}$

C.

$r_1=100 r_3, r_2=\frac{r_3}{10}$

D.

$r_1=10 r_2, r_3=\frac{r_2}{10}$

2022 TS-EAMCET MCQ
TS EAMCET 2022 (Online) 19th July Evening Shift

Which of the following is a zero order reaction?

A.

$2 \mathrm{HI} \longrightarrow \mathrm{H}_2+\mathrm{I}_2$

B.

$\mathrm{H}_2+\mathrm{Br}_2 \xrightarrow[\Delta]{ } 2 \mathrm{HBr}$

C.

$2 \mathrm{~N}_2 \mathrm{O}_5 \longrightarrow 4 \mathrm{NO}_2+\mathrm{O}_2$

D.

$\mathrm{H}_2+\mathrm{Cl}_2 \xrightarrow{h \nu} 2 \mathrm{HCl}$

2022 TS-EAMCET MCQ
TS EAMCET 2022 (Online) 19th July Morning Shift

The reaction, $2 A \rightarrow 2 B+C$ has a rate constant of $1.2 \times 10^{-2} \mathrm{~s}^{-1}$. Which of the following is correct?

A.

Plot of $[A]$ vs " $\frac{1}{t}$ " will be straight line

B.

Plot of $\frac{1}{[A]} v s t^2$ will be a straight line

C.

Plot of $\ln [A]$ vs $t$ will be a straight line

D.

Plot of $[A] v s t^2$ will be a straight line

2022 TS-EAMCET MCQ
TS EAMCET 2022 (Online) 18th July Evening Shift

The rate constant of a reaction is increased by 4 times after addition of catalyst to the reaction mixture at the same temperature of $27^{\circ} \mathrm{C}$. The change in the activation energy of this reaction is (Take $\ln (1 / 4)=-1386, R=8.314$ )

A.

$-15 \mathrm{~kJ} / \mathrm{mol}$

B.

$-1.5 \mathrm{~kJ} / \mathrm{mol}$

C.

$-3.45 \mathrm{~kJ} / \mathrm{mol}$

D.

$-34.5 \mathrm{~kJ} / \mathrm{mol}$

2022 TS-EAMCET MCQ
TS EAMCET 2022 (Online) 18th July Evening Shift

Half-life periods for a reaction at initial concentrations of 0.1 M and 0.01 M are 5 and 50 minutes, respectively. The order of reaction is

A.

3

B.

2

C.

1

D.

0

2022 TS-EAMCET MCQ
TS EAMCET 2022 (Online) 18th July Morning Shift

If the definition of the temperature coefficient of the reaction holds good for a reaction between $27^{\circ} \mathrm{C}$ and $37^{\circ} \mathrm{C}$, the activation energy for the reaction in $\mathrm{kJ} \mathrm{mol}^{-1}$ is

A.

102

B.

53.5

C.

$\infty$

D.

141.5

2022 AP-EAPCET MCQ
AP EAPCET 2022 - 5th July Morning Shift

The rate constant of a reaction at 500 K and 700 K are $0.02 \mathrm{~s}^{-1}$ and $0.2 \mathrm{~s}^{-1}$ respectively. The activation energy of the reaction (in $\left.\mathrm{kJ} \mathrm{mol}^{-1}\right)$ is $\left(R=8.3 \mathrm{JK}^{-1} \mathrm{~mol}^{-1}\right)$

A.
66.90
B.
33.45
C.
22.30
D.
44.45
2022 AP-EAPCET MCQ
AP EAPCET 2022 - 4th July Evening Shift

The time required for completion of $93.75 \%$ of a first order reaction is $x$ minutes. The half-life of it (in minutes) is

A.
x/8
B.
x/2
C.
x/4
D.
x/3
2022 AP-EAPCET MCQ
AP EAPCET 2022 - 4th July Morning Shift

. The rate constant for a zero order reaction $A \longrightarrow$ products is $0.0030 \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~S}^{-1}$. How long it will take for the initial concentration of $A$ to fall from 0.10 M to 0.075 M ?

A.
10 s
B.
20 s
C.
8.33 s
D.
1.33 s
2021 AP-EAPCET MCQ
AP EAPCET 2021 - 20th August Evening Shift

For a $A+B \rightarrow$ products, the rate of the reaction is given by rate $=k[A][B]^2$. The units of rate constant $(k)$ will be

A.
$\mathrm{mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1}$
B.
$\mathrm{L} \mathrm{~mol} \mathrm{~s}^{-1}$
C.
$\mathrm{mol}^2 \mathrm{~L}^{-2} \mathrm{~s}^{-1}$
D.
$\mathrm{mol}^{-2} \mathrm{~L}^2 \mathrm{~s}^{-1}$
2021 AP-EAPCET MCQ
AP EAPCET 2021 - 20th August Evening Shift

For an elementary reaction, $X(g) \longrightarrow Y(g)+Z(g)$, the $t_{1 / 2}$ is $10 \mathrm{~min}$. In what period of time would the concentration of $X$ be reduced to $10 \%$ of its original concentration?

A.
$20 \mathrm{~min}$
B.
$33.2 \mathrm{~min}$
C.
$15 \mathrm{~min}$
D.
$25.2 \mathrm{~min}$