1. Analyze the reactions below, which are all acid base reactions. a. Label each reaction as a Brønsted-Lowry Acid/Base reaction or just a Lewis Acid/Base reaction. b. On the reactant side of each reaction, identify the acid and base. c. For only the reactions that are Brønsted-Lowry reactions, label the products with the terms "conjugate acid" and "conjugate base". a) CH3OH + H₂O* 요 b) C) d) ő + TICI4 H H + NaH + BH3 CH3OH₂ + H₂O to-Tic14 TICI4 H BH3 Na+ + H₂

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1. Analyze the reactions below, which are all acid-base reactions.

   a. Label each reaction as a Brønsted-Lowry Acid/Base reaction or just a Lewis Acid/Base reaction.

   b. On the reactant side of each reaction, identify the acid and base.

   c. For only the reactions that are Brønsted-Lowry reactions, label the products with the terms “conjugate acid” and “conjugate base”.

   a) \( \text{CH}_3\text{OH} + \text{H}_3\text{O}^+ \rightarrow \text{CH}_3\text{OH}_2^+ + \text{H}_2\text{O} \)

   b) 

   \[
   \begin{array}{c}
   \text{} \\
   \text{} \\
   \text{+ TiCl}_4 \rightarrow
   \end{array}
   \]

   (Reaction between acetone and titanium tetrachloride)

   c) 

   \[
   \begin{array}{c}
   \text{} \\
   \text{NaH} \rightarrow
   \end{array}
   \]

   (Reaction forming a sodium enolate)

   d) 

   \[
   \begin{array}{c}
   \text{} \\
   \text{BH}_3 \rightarrow
   \end{array}
   \]

   (Reaction involving borane)

**Clarification on Diagrams:**

- **Diagram A**: Shows a proton transfer from \( \text{H}_3\text{O}^+ \) to \( \text{CH}_3\text{OH} \), identifying it as a Brønsted-Lowry Acid/Base reaction.

- **Diagram B**: Illustrates a coordination reaction between acetone and titanium tetrachloride, characteristic of a Lewis Acid/Base reaction.

- **Diagram C**: Indicates deprotonation forming an enolate, depicting a Brønsted-Lowry Acid/Base reaction.

- **Diagram D**: Demonstrates the reaction of borane with an organic molecule, typical of a Lewis Acid/Base interaction.

**Guidance for Educational Use:**

This document provides a structured approach to classifying and identifying components of acid-base reactions, distinguishing between Brønsted-Lowry and Lewis concepts. It also
Transcribed Image Text:1. Analyze the reactions below, which are all acid-base reactions. a. Label each reaction as a Brønsted-Lowry Acid/Base reaction or just a Lewis Acid/Base reaction. b. On the reactant side of each reaction, identify the acid and base. c. For only the reactions that are Brønsted-Lowry reactions, label the products with the terms “conjugate acid” and “conjugate base”. a) \( \text{CH}_3\text{OH} + \text{H}_3\text{O}^+ \rightarrow \text{CH}_3\text{OH}_2^+ + \text{H}_2\text{O} \) b) \[ \begin{array}{c} \text{} \\ \text{} \\ \text{+ TiCl}_4 \rightarrow \end{array} \] (Reaction between acetone and titanium tetrachloride) c) \[ \begin{array}{c} \text{} \\ \text{NaH} \rightarrow \end{array} \] (Reaction forming a sodium enolate) d) \[ \begin{array}{c} \text{} \\ \text{BH}_3 \rightarrow \end{array} \] (Reaction involving borane) **Clarification on Diagrams:** - **Diagram A**: Shows a proton transfer from \( \text{H}_3\text{O}^+ \) to \( \text{CH}_3\text{OH} \), identifying it as a Brønsted-Lowry Acid/Base reaction. - **Diagram B**: Illustrates a coordination reaction between acetone and titanium tetrachloride, characteristic of a Lewis Acid/Base reaction. - **Diagram C**: Indicates deprotonation forming an enolate, depicting a Brønsted-Lowry Acid/Base reaction. - **Diagram D**: Demonstrates the reaction of borane with an organic molecule, typical of a Lewis Acid/Base interaction. **Guidance for Educational Use:** This document provides a structured approach to classifying and identifying components of acid-base reactions, distinguishing between Brønsted-Lowry and Lewis concepts. It also
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