QUESTION IMAGE
Question
unit test #3
examine the figure below for the following question:
which letter represents the activation energy of the forward reaction?
a
b
c
d
none of the above
Brief Explanations
Activation energy is the minimum energy required for a reaction to occur. In a potential - energy diagram for a reaction, it is the energy difference between the reactants and the transition state (the highest point on the curve).
- Option A: This is the energy difference between the reactants and the products. It represents the enthalpy change ($\Delta H$) of the reaction, not the activation energy.
- Option B: This is not a standard quantity in the context of activation energy.
- Option C: This is not relevant to the activation energy concept.
- Option D: This represents the energy difference between the reactants and the transition state (the peak of the curve), which is the definition of activation energy for the forward reaction.
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D.