Write an equation that shows the formation of a aluminum ion from a neutral aluminum atom. Represent electrons as e. If a box is not needed, leave it blank. If the coefficient is 1, do not write it. +

Chemistry
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Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
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Chapter1: Chemical Foundations
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**Formation of an Aluminum Ion**

**Objective:** Write an equation that demonstrates the formation of an aluminum ion from a neutral aluminum atom.

**Instructions:**
- Represent electrons as \( e^- \).
- If a box is not needed, leave it blank.
- If the coefficient is 1, do not write it.

**Equation Format:**
\[ \text{Al} + \_\_ \rightarrow \_\_ + \_\_ \]

**Hints:**
- An aluminum atom loses three electrons to form a positively charged aluminum ion (\( \text{Al}^{3+} \)).
- Balance the equation by ensuring the total charge and mass are equal on both sides.

**Submission:**
- Click "Submit Answer" to check your work.
- You have 8 more attempts remaining if revision is necessary.

---

This exercise is designed to enhance understanding of ion formation and the notation used in chemical equations.
Transcribed Image Text:**Formation of an Aluminum Ion** **Objective:** Write an equation that demonstrates the formation of an aluminum ion from a neutral aluminum atom. **Instructions:** - Represent electrons as \( e^- \). - If a box is not needed, leave it blank. - If the coefficient is 1, do not write it. **Equation Format:** \[ \text{Al} + \_\_ \rightarrow \_\_ + \_\_ \] **Hints:** - An aluminum atom loses three electrons to form a positively charged aluminum ion (\( \text{Al}^{3+} \)). - Balance the equation by ensuring the total charge and mass are equal on both sides. **Submission:** - Click "Submit Answer" to check your work. - You have 8 more attempts remaining if revision is necessary. --- This exercise is designed to enhance understanding of ion formation and the notation used in chemical equations.
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