MEDIUM
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The half life period for catalytic decomposition of XY3 at 100 mm is found to be 8 hrs and at 200 mm it is 4 hrs. The order of reaction is

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Important Questions on Chemical Kinetics

EASY
For a reaction 2A+BP, when concentration of B alone is doubled, t1/2 does not change and when concentrations of both A and B is doubled, rate increases by a factor of 4. The unit of rate constant is,
MEDIUM
For the reaction 2A+BC , the values of initial rate at different reactant concentrations are given in the table below. The rate law for the reactions is:
[A](molL-1) [B](molL-1)
Initial Rate
(molL-1s-1)
0.05 0.05 0.045
0.10 0.05 0.090
0.20 0.10 0.72
EASY
The rate law for the reaction 2NO(g)+O2(g)2NO2(g) is rate =k[NO]2O2, then which among the following statement is correct?
EASY
The rate constant value for a reaction is 1.75×102 L2 mol-2sec-1. The half-life period t1/2_______.
EASY
If 50 % of a reaction occurs in 100 second and 75 % of the reaction occurs in 200 second, the order of this reaction is:
MEDIUM

2NO(g)+Cl2( g)2NOCl(s)
This reaction was studied at -10°C and the following data was obtained

run[NO]0Cl20   r010.100.100.1820.100.200.3530.200.201.40

[NO]0 and Cl20 are the initial concentrations and r0 is the initial reaction rate. The overall order of the reaction is
(Round off to the Nearest Integer).

MEDIUM

The given plots represent the variation of the concentration of a reactant R with time for two different reactions (i) and (ii). The respective orders of the reaction are
(i) Question Image

(ii) Question Image

MEDIUM

For the reaction 2A+B22C, the following data is provided. Find the overall order of this reaction.

Experiment [A]mol·L-1 [B]mol.L-1 mol.L-1·s-1
1 0.5 0.5 1×10-4
2 0.5 1.0 2×10-4
3 1.0 1.0 2×10-4

 

HARD
The data given below are for the reaction of A and D2 to form product at 295K . Find the correct rate expression for this reaction
 
D2mol L-1 Amol L-1 Initial ratemol L-1s-1
0.05 0.05 1×10-3
0.15 0.05 3×10-3
0.05 0.15 9×10-3
EASY
Under what condition the order of the reaction,

2HIH2g+I2g, is zero
HARD

For the following graphs, 

Question Image

Question Image

Choose from the options given below, the correct one regarding order of reaction is :

MEDIUM
The following results were obtained during kinetic studies of the reaction.

2A+B product
 
Experiment A in mol L-1 B  in mol L-1 Initial rate of reaction in mol L-1 min -1
I 0.10 0.20 6.93×10-3
II 0.10 0.25 6.93×10-3
III 0.20 0.30 1.386×10-2

The time (in minutes) required to consume half of A is
MEDIUM
For a reaction A+2 B Products, when concentration of B alone is increased, half life remains the same. If concentration of A alone is doubled, rate remains the same. The unit of rate constant for the reaction is
MEDIUM

The kinetic study of a reaction like AP at 300 K provides the following curve, where concentration is taken in mol dm-3 and time in min.

Question Image

Identify the correct order (n) and rate constant (k)

MEDIUM

The following data was obtained for chemical reaction given below at 975 K.

2NO(g)+2H2( g)N2( g)+2H2O(g)

 [NO]H2Rate  mol L1 mol L1molL-1 s-1(A)8×10-58×10-57×10-9(B)24×10-58×10-52.1×10-8(C)24×10-532×10-58.4×10-8

The order of the reaction with respect to NO_____ is [Integer answer]

MEDIUM
For the reaction, X+YProducts, the following data is obtained at 300K.
Experiment Number Initial concentration in mol L-1 Rate (in mol L-1min-1)
X Y
1 0.010 0.010 1.2×10-4
2 0.010 0.020 2.4×10-4
3 0.020 0.020 9.6×10-4

The order of the reaction is

EASY
What will be the overall order of a reaction for which the rate expression is given as
Rate=K[A]12[ B]32
HARD
At 518oC, the rate of decomposition of a sample of gaseous acetaldehyde, initially at a pressure of 363Torr was 1.00 Torr s-1 when 5% had reacted and 0.50 Torr s-1 when 33% had reacted. The order of the reaction is:
MEDIUM
What is the order with respect to [A], [B] and [C], respectively?
 
[A] [B] [C] Rate M/sec
0.2 0.1 0.02 8.08 × 103
0.1 0.2 0.02 2.01 × 103
0.1 1.8 0.18 6.03 × 103
0.2 0.1 0.08 6.464 × 102
MEDIUM
For the reaction, 2A+B products, when the concentration of A and B both were doubled, the rate of the reaction increased from 0.3 mol L-1s-1 to 2.4 mol L-1s-1.  When the concentration of A alone is doubled, the rate increased from 0.3 mol L-1s-1 to 0.6 mol L-1s-1.

Which one of the following statements is correct?