M K Verma Solutions for Chapter: Chemical Kinetics, Exercise 1: TOPICWISE QUESTIONS
M K Verma Chemistry Solutions for Exercise - M K Verma Solutions for Chapter: Chemical Kinetics, Exercise 1: TOPICWISE QUESTIONS
Attempt the practice questions on Chapter 4: Chemical Kinetics, Exercise 1: TOPICWISE QUESTIONS with hints and solutions to strengthen your understanding. Practice Book for MHT-CET Chemistry (Physical Chemistry 2) solutions are prepared by Experienced Embibe Experts.
Questions from M K Verma Solutions for Chapter: Chemical Kinetics, Exercise 1: TOPICWISE QUESTIONS with Hints & Solutions
Assuming gas-phase decomposition of dimethyl ether follows order kinetics:
The reaction is carried out in a constant volume container at and has a half-life . Initially, only dimethyl ether is present at a pressure of . The total pressure of the system after is: (given )

A sample contains of radioactive isotope The number of atoms which will decay during the eleventh day is Avogadro's number,

Addition of a catalyst at increases the rate of a chemical reaction by a factor of . By how many the activation energy of the catalysed pathway is less than the activation energy of the original pathway approximately .

A first order reaction is completed in minutes at and in minutes at The energy of activation of the reaction is

The increase in the rate constant of a reaction when its temperature is increased from is nearly:

The reaction is elementary order reaction opposed by elementary secondary order reaction. When started with equimolar amounts of and at equilibrium, it is found that the concentration of is twice that of Specific rate constant for forward reaction is The specific rate constant for backward reaction is

Two reactions proceed at at the same rate. The temperature coefficient of the first reaction is and that of the second reaction is , then the ratio of rates of these reactions at is ( & are rates of first and second reaction respectively).

The half-life period of a third-order reaction is found to be one hour when started with a concentration of of reactant. If started with , concentration the half-life period in hours will be:
