URGENT Chemistry Question: Which of the Statements is Correct?

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The discussion centers on determining the correctness of various statements regarding reaction mechanisms and enthalpy in chemistry. It highlights the relationship between the number of elementary steps in a reaction and its speed, suggesting that slow reactions have more steps. The participants debate whether the enthalpy of reaction must always be greater than activation energy for a reaction to proceed. There is confusion over the correct combinations of statements, with several options presented for consideration. Ultimately, the conversation emphasizes the complexity of reaction mechanisms and the importance of understanding enthalpy and activation energy relationships.
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URGENT QUESTION: Chemistry

i would think that enthalpy of reaction would always have to be greater than activation in order to proceed. however, i thought the rest were false.

please help me...this is very frustrating.


This problem involves consideration of the following statements.

(a) Slow reactions have more elementary steps than fast reactions.
(b) The slowest step comes last in a reaction mechanism.
(c) The slowest step comes first in a reaction mechanism.
(d) Fast reactions have fewer elementary steps than slow reactions.
(e) Fast reactions have only one elementary step.
(f) Enthalpy of reaction is larger than activation energy.
(g) Enthalpy of reaction is smaller than activation energy.

Which of the following combinations of the above statements is correct?

all are correct

none is correct

(a), (c), and (f) are correct

(e) is correct

(d) and (f) are correct

(a) is correct

(b), (e), and (f) are correct
 
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the more intermediate steps you have in a reaction, the slower this reaction will be.
 
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