A + B → Product
If concentration of A is doubled, rate increases 4 times. If concentrations of A and B both are doubled, rate increases 8 times. The differential rate equation of the reaction will be
Which of the following is a first order reaction?
NH4NO2 →N2 + 2H2O
2HI → H2 + I2
2NO2 → 2NO + O2
2NO + O2 → 2NO2
In the reaction of A + 2B → C + 2D, the initial rate = att = 0 wasfound to be 2.6 × 10-2 M s-1. What is the value of at t = 0 in Ms-1 ?
2.6 × 10-2
5.2 × 10-2
1.0 × 10-1
6.5 × 10-3
The thermal decomposition of a compound is of first order. If a sample of the compound decomposes 50% in 120 min, what time will it take to undergo 90% decomposition?
Nearly 400 min
Nearly 45 min
Nearly 480 min
Nearly 240 min
What is the half-life of Na-24, if 2 x10-4 g sample of it disintegrates at the rate of 7.0 x 1012 atoms per second?
4.97 × 106s
4.97 × 105s
0.497 × 105 s
4.97 × 104 s
A first order reaction completed its 20% in 200 minute. How much time it will take to complete its 80%?
400 min
800 min
1400 min
1000 min
The half-life period (t1/2) for 241Am in years, (given that it emits 1.2 × 1011 α-particles per gram per second) is
375 yr
112 yr
615 yr
458 yr
If the initial concentration of the reactant is doubled, the time for half reaction is also doubled. The order of the reaction is
zero
one
two
three
A.
zero
Half-life period, t1/2 ∝
Given, (t1/2) ∝ a
On comparing
a ∝
a1 ∝ a1 - n
1 = 1 - n
1 - 1 = -n
n = 0
Hence, the order of the reaction is 0.
The rate of a reaction doubles when the initial concentration of the reactant is made four fold. If the initial concentration is made 400 fold, then the rate will become
400 times
200 times
40 times
20 times