Calculate the empirical formula of the alum. Show (URGENT NEED HELP FAST) calculations for moles a hydrate and moles water. Chart is second photo and can be used for reference.
Calculate the empirical formula of the alum. Show (URGENT NEED HELP FAST) calculations for moles a hydrate and moles water. Chart is second photo and can be used for reference.
Chemistry
10th Edition
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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Calculate the empirical formula of the alum. Show (URGENT NEED HELP FAST) calculations for moles a hydrate and moles water. Chart is second photo and can be used for reference.
![**Calculating the Empirical Formula of Alum**
To determine the empirical formula of the alum, follow the procedure outlined in Example 1. Ensure you show your calculations for Trial 1.
- **Moles Anhydrate**:
(Note: The molar mass of \( \text{KAl(SO}_4\text{)}_2 \) is 258.21 g/mol)
_[Space for input of calculated moles]_
- **Moles Water**:
_[Space for input of calculated moles]_
**Results**:
- **Trial 1**: \( \text{KAl(SO}_4\text{)}_2 \cdot \_\_ \text{H}_2\text{O} \)
- **Trial 2**: \( \text{KAl(SO}_4\text{)}_2 \cdot \_\_ \text{H}_2\text{O} \)
*150 – Report Sheet*](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F0fea3533-c1db-47fb-8c33-dd6f5ba421e4%2F93202480-d448-472c-b879-74b2f75d4aa3%2Fozngn5e_processed.jpeg&w=3840&q=75)
Transcribed Image Text:**Calculating the Empirical Formula of Alum**
To determine the empirical formula of the alum, follow the procedure outlined in Example 1. Ensure you show your calculations for Trial 1.
- **Moles Anhydrate**:
(Note: The molar mass of \( \text{KAl(SO}_4\text{)}_2 \) is 258.21 g/mol)
_[Space for input of calculated moles]_
- **Moles Water**:
_[Space for input of calculated moles]_
**Results**:
- **Trial 1**: \( \text{KAl(SO}_4\text{)}_2 \cdot \_\_ \text{H}_2\text{O} \)
- **Trial 2**: \( \text{KAl(SO}_4\text{)}_2 \cdot \_\_ \text{H}_2\text{O} \)
*150 – Report Sheet*
![**Empirical Formula of Alum**
1. **Mass of beaker plus alum, \( \text{KAl(SO}_4\text{)}_2 \cdot x\text{H}_2\text{O} \):**
- Trial 1: 50.249 g
- Trial 2: 57.925 g
2. **Mass of beaker:**
- Trial 1: 48.973 g
- Trial 2: 56.446 g
3. **Mass of alum:**
- Trial 1: 1.276 g
- Trial 2: 1.479 g
4. **Mass of beaker plus anhydrate:**
- Trial 1: 49.665 g
- Trial 2: 57.254 g
5. **Mass of anhydrate, \( \text{KAl(SO}_4\text{)}_2 \):**
- Trial 1: 0.692 g
- Trial 2: 0.808 g
6. **Mass of water:**
- Trial 1: 0.584 g
- Trial 2: 0.671 g
Calculate the empirical formula of the alum as shown in Example 1. Show your calculation for Trial 1.](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F0fea3533-c1db-47fb-8c33-dd6f5ba421e4%2F93202480-d448-472c-b879-74b2f75d4aa3%2Fb1u3g6k_processed.jpeg&w=3840&q=75)
Transcribed Image Text:**Empirical Formula of Alum**
1. **Mass of beaker plus alum, \( \text{KAl(SO}_4\text{)}_2 \cdot x\text{H}_2\text{O} \):**
- Trial 1: 50.249 g
- Trial 2: 57.925 g
2. **Mass of beaker:**
- Trial 1: 48.973 g
- Trial 2: 56.446 g
3. **Mass of alum:**
- Trial 1: 1.276 g
- Trial 2: 1.479 g
4. **Mass of beaker plus anhydrate:**
- Trial 1: 49.665 g
- Trial 2: 57.254 g
5. **Mass of anhydrate, \( \text{KAl(SO}_4\text{)}_2 \):**
- Trial 1: 0.692 g
- Trial 2: 0.808 g
6. **Mass of water:**
- Trial 1: 0.584 g
- Trial 2: 0.671 g
Calculate the empirical formula of the alum as shown in Example 1. Show your calculation for Trial 1.
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