For both of the following reactions, determine if the given statements are true or false. In each part, if the statement is false, choose the statement that provides the correct reasoning. Select the single best answer for each part. Part 1 of 2 For a reaction with AH = -85 AG for the reaction is endergonic. (Assume AS is small compared to AH°.) kJ mol The statement is false. The reaction is neither exergonic or endergonic. The statement is false. The reaction does not occur. The statement is false. The reaction is exergonic. O The statement is true. X
For both of the following reactions, determine if the given statements are true or false. In each part, if the statement is false, choose the statement that provides the correct reasoning. Select the single best answer for each part. Part 1 of 2 For a reaction with AH = -85 AG for the reaction is endergonic. (Assume AS is small compared to AH°.) kJ mol The statement is false. The reaction is neither exergonic or endergonic. The statement is false. The reaction does not occur. The statement is false. The reaction is exergonic. O The statement is true. X
Chemistry
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ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Chapter1: Chemical Foundations
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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![For both of the following reactions, determine if the given statements are true or false. In each part, if the statement is false, choose the statement that provides the correct reasoning. Select the single best answer for each part.
**Part 1 of 2**
For a reaction with \( \Delta H^\circ = -85 \, \frac{\text{kJ}}{\text{mol}} \), \( \Delta G^\circ \) for the reaction is endergonic. (Assume \( \Delta S^\circ \) is small compared to \( \Delta H^\circ \).)
- The statement is false. The reaction is neither exergonic nor endergonic.
- The statement is false. The reaction does not occur.
- The statement is false. The reaction is exergonic.
- The statement is true.
**Part 2 of 2**
For a reaction with \( \Delta H^\circ = 120 \, \frac{\text{kJ}}{\text{mol}} \), the bonds of the products are stronger than the bonds of the starting materials. (Assume \( \Delta S^\circ \) is small compared to \( \Delta H^\circ \).)
- The statement is true.
- The statement is false. The bonds of the starting materials are stronger.
- The statement is false. The bonds in the starting materials and product have the same bond energy.
- The statement is false. The bond energy cannot be approximated.](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F30851b88-5e79-4818-b8e1-05241e5cb3dc%2F353d7134-4f0d-47aa-a304-a7d9cd483ab6%2F45bhoz9_processed.jpeg&w=3840&q=75)
Transcribed Image Text:For both of the following reactions, determine if the given statements are true or false. In each part, if the statement is false, choose the statement that provides the correct reasoning. Select the single best answer for each part.
**Part 1 of 2**
For a reaction with \( \Delta H^\circ = -85 \, \frac{\text{kJ}}{\text{mol}} \), \( \Delta G^\circ \) for the reaction is endergonic. (Assume \( \Delta S^\circ \) is small compared to \( \Delta H^\circ \).)
- The statement is false. The reaction is neither exergonic nor endergonic.
- The statement is false. The reaction does not occur.
- The statement is false. The reaction is exergonic.
- The statement is true.
**Part 2 of 2**
For a reaction with \( \Delta H^\circ = 120 \, \frac{\text{kJ}}{\text{mol}} \), the bonds of the products are stronger than the bonds of the starting materials. (Assume \( \Delta S^\circ \) is small compared to \( \Delta H^\circ \).)
- The statement is true.
- The statement is false. The bonds of the starting materials are stronger.
- The statement is false. The bonds in the starting materials and product have the same bond energy.
- The statement is false. The bond energy cannot be approximated.
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