See Figure 9-8. If you wanted to ONLY form Alkene 2 in an E2 reaction (not part of a product mixture), you would use A B 2 can ONLY be formed as part of a product mixture

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Chapter20: Organic Chemistry
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**Figure 9-8: Alkenes and Alkyl Halides**

This figure presents three alkenes and four alkyl halides:

**Alkenes:**

1. **Alkene 1**: A two-carbon chain with a double bond between the two carbons.
2. **Alkene 2**: A three-carbon chain where the double bond is between the second and third carbon.
3. **Alkene 3**: A three-carbon chain with a double bond between the first and second carbon.

**Alkyl Halides:**

A. **Alkyl Halide A**: A two-carbon chain with a bromine atom (Br) attached to the second carbon.
B. **Alkyl Halide B**: A three-carbon chain with a bromine atom attached to the middle carbon.
C. **Alkyl Halide C**: A branched three-carbon chain with the bromine atom attached to the central carbon.
D. **Alkyl Halide D**: A three-carbon chain with the bromine atom attached to the third carbon.

These diagrams illustrate various configurations of organic molecules involving alkenes (hydrocarbon molecules with at least one carbon-carbon double bond) and alkyl halides (chemical compounds where a halogen atom is attached to an alkyl group).
Transcribed Image Text:**Figure 9-8: Alkenes and Alkyl Halides** This figure presents three alkenes and four alkyl halides: **Alkenes:** 1. **Alkene 1**: A two-carbon chain with a double bond between the two carbons. 2. **Alkene 2**: A three-carbon chain where the double bond is between the second and third carbon. 3. **Alkene 3**: A three-carbon chain with a double bond between the first and second carbon. **Alkyl Halides:** A. **Alkyl Halide A**: A two-carbon chain with a bromine atom (Br) attached to the second carbon. B. **Alkyl Halide B**: A three-carbon chain with a bromine atom attached to the middle carbon. C. **Alkyl Halide C**: A branched three-carbon chain with the bromine atom attached to the central carbon. D. **Alkyl Halide D**: A three-carbon chain with the bromine atom attached to the third carbon. These diagrams illustrate various configurations of organic molecules involving alkenes (hydrocarbon molecules with at least one carbon-carbon double bond) and alkyl halides (chemical compounds where a halogen atom is attached to an alkyl group).
**Question:**

See Figure 9-8. If you wanted to ONLY form Alkene 2 in an E2 reaction (not part of a product mixture), you would use:

- ○ A
- ○ B
- ○ C
- ○ D
- ○ 2 can ONLY be formed as part of a product mixture

**Explanation:**

This question refers to an E2 elimination reaction scenario. The options provided (A, B, C, D) likely correspond to different substrates or conditions that influence the E2 reaction pathway. The final option suggests that forming Alkene 2 exclusively might not be possible, hinting at potential complications such as regioselectivity or competing pathways. Understanding these factors is critical for predicting the outcome of the reaction. 

Note: The actual Figure 9-8 referenced is necessary for choosing the correct answer, as it would provide the structural context or conditions related to the decision.
Transcribed Image Text:**Question:** See Figure 9-8. If you wanted to ONLY form Alkene 2 in an E2 reaction (not part of a product mixture), you would use: - ○ A - ○ B - ○ C - ○ D - ○ 2 can ONLY be formed as part of a product mixture **Explanation:** This question refers to an E2 elimination reaction scenario. The options provided (A, B, C, D) likely correspond to different substrates or conditions that influence the E2 reaction pathway. The final option suggests that forming Alkene 2 exclusively might not be possible, hinting at potential complications such as regioselectivity or competing pathways. Understanding these factors is critical for predicting the outcome of the reaction. Note: The actual Figure 9-8 referenced is necessary for choosing the correct answer, as it would provide the structural context or conditions related to the decision.
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