Chemistry, asked by pintu30131, 11 months ago

Consider figure and mark the correct option.
Products
(a) Activation energy of forward reaction is E₁ + E₂ and
product is less stable than reactant
(b) Activation energy of forward reaction is E₁ + E₂ and
product is more stable than reactant
(c) Activation energy of both forward and backward
reaction is E₁ +E₂ and reactant is more stable than
product
(d) Activation energy of backward reaction is E₁ and
product is more stable than reactant

Answers

Answered by Anonymous
1

Answer:

(d) is ur correct answer in this options

thanks

Answered by brokendreams
0

Activation energy of forward reaction is E₁ + E₂ and product is less stable than reactant.

Explanation:

  • Activation energy of a reaction is defined as the minimum amount of energy that is to be supplied to the reactant for the reaction to proceed.
  • Here in the figure we can see that the energy level of the reactant is lower to that of the product.
  • So the reactant is more stable than the product.
  • On the other hand, the amount of energy that is needed to cross the threshold energy from the reactant energy is E1+E2.
  • So the activation energy of the reaction is the same.

For more information about activation energy,

https://brainly.in/question/7826425

What is activation energy? How is the rate constant of reaction ...

https://brainly.in/question/11622037

What is temperature dependence of activation energy of any reaction?

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