▾ Part A Balance this equation, and then enter the coefficients, in order, below. CH4 (g) + Br₂(g) = CBr4(g) + HBr(g) Express your answer as integers separated by commas (e.g., 1, 2, 3, 4), where 1 indicates the lack of a coefficient. ▸ View Available Hint(s) Submit

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**Chemistry Lesson: Understanding Equilibrium Constants**

### Core Chemistry Skill: Writing the Equilibrium Constant Expression and Calculating the Constant

**Concept Overview:**
When a chemical reaction reaches equilibrium, the rates of the forward and reverse reactions are equal. At this point, the concentrations of all reactants and products remain constant over time. The equilibrium constant, denoted as \( K_c \), is used to describe the ratio of the concentrations of the products to the concentrations of the reactants at equilibrium.

**Equation to Balance:**
 
For the given reaction:

\[ \text{CH}_4(g) + \text{Br}_2(g) \rightleftharpoons \text{CBr}_4(g) + \text{HBr}(g) \]

### Task

**Part A:**
Balance the chemical equation provided above and enter the coefficients of each compound in the boxes. Use integers separated by commas (e.g., 1, 2, 3, 4), where a '1' indicates no coefficient needed.

- **Input Box**: Enter your coefficients here.
- **Submit Button**: Click to submit your answer for evaluation.

**Remaining Parts:**
- **Part B, C, and D**: Complete the previous parts to proceed.

**Feedback:**
If you have any questions or require further clarification, please use the 'Provide Feedback' option.

**Important Resources:**
- Review Section
- Constants
- Periodic Table

Use these resources to aid your understanding and calculations.

**Next Steps:**
Click 'Next' to proceed to the following question after completing all parts.
Transcribed Image Text:**Chemistry Lesson: Understanding Equilibrium Constants** ### Core Chemistry Skill: Writing the Equilibrium Constant Expression and Calculating the Constant **Concept Overview:** When a chemical reaction reaches equilibrium, the rates of the forward and reverse reactions are equal. At this point, the concentrations of all reactants and products remain constant over time. The equilibrium constant, denoted as \( K_c \), is used to describe the ratio of the concentrations of the products to the concentrations of the reactants at equilibrium. **Equation to Balance:** For the given reaction: \[ \text{CH}_4(g) + \text{Br}_2(g) \rightleftharpoons \text{CBr}_4(g) + \text{HBr}(g) \] ### Task **Part A:** Balance the chemical equation provided above and enter the coefficients of each compound in the boxes. Use integers separated by commas (e.g., 1, 2, 3, 4), where a '1' indicates no coefficient needed. - **Input Box**: Enter your coefficients here. - **Submit Button**: Click to submit your answer for evaluation. **Remaining Parts:** - **Part B, C, and D**: Complete the previous parts to proceed. **Feedback:** If you have any questions or require further clarification, please use the 'Provide Feedback' option. **Important Resources:** - Review Section - Constants - Periodic Table Use these resources to aid your understanding and calculations. **Next Steps:** Click 'Next' to proceed to the following question after completing all parts.
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