A 8.00 L tank at 21.1 °C is filled with 11.6 g of chlorine pentafluoride gas and 12.6 g of sulfur tetrafluoride gas. You can assume both gases behave as ideal gases under these conditions. Calculate the mole fraction and partial pressure of each gas, and the total pressure in the tank. Round each of your answers to 3 significant digits.
A 8.00 L tank at 21.1 °C is filled with 11.6 g of chlorine pentafluoride gas and 12.6 g of sulfur tetrafluoride gas. You can assume both gases behave as ideal gases under these conditions. Calculate the mole fraction and partial pressure of each gas, and the total pressure in the tank. Round each of your answers to 3 significant digits.
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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![A 8.00 L tank at 21.1 °C is filled with 11.6 g of chlorine pentafluoride gas and 12.6 g of sulfur tetrafluoride gas. You can assume both gases behave as ideal gases under these conditions.
Calculate the mole fraction and partial pressure of each gas, and the total pressure in the tank. Round each of your answers to 3 significant digits.
**Gas Details:**
- **Chlorine Pentafluoride**
- Mole Fraction: [Input Box]
- Partial Pressure: [Input Box] atm
- **Sulfur Tetrafluoride**
- Mole Fraction: [Input Box]
- Partial Pressure: [Input Box] atm
- **Total Pressure in Tank**
- [Input Box] atm
**Diagram Explanation:**
A table is presented with information sections for chlorine pentafluoride and sulfur tetrafluoride. Each section has input boxes for "mole fraction" and "partial pressure." At the bottom, there is a box for "Total pressure in tank."
On the right side of the image, there is a small virtual keypad for input, which features numerical values, a clear button, and an assistive icon (possibly for help or information).](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F616cda3b-562b-4dc7-9ce3-f2e5fde2dc94%2Fa1d6426d-6111-484c-bd91-414422a1a0a3%2F4aw4664_processed.png&w=3840&q=75)
Transcribed Image Text:A 8.00 L tank at 21.1 °C is filled with 11.6 g of chlorine pentafluoride gas and 12.6 g of sulfur tetrafluoride gas. You can assume both gases behave as ideal gases under these conditions.
Calculate the mole fraction and partial pressure of each gas, and the total pressure in the tank. Round each of your answers to 3 significant digits.
**Gas Details:**
- **Chlorine Pentafluoride**
- Mole Fraction: [Input Box]
- Partial Pressure: [Input Box] atm
- **Sulfur Tetrafluoride**
- Mole Fraction: [Input Box]
- Partial Pressure: [Input Box] atm
- **Total Pressure in Tank**
- [Input Box] atm
**Diagram Explanation:**
A table is presented with information sections for chlorine pentafluoride and sulfur tetrafluoride. Each section has input boxes for "mole fraction" and "partial pressure." At the bottom, there is a box for "Total pressure in tank."
On the right side of the image, there is a small virtual keypad for input, which features numerical values, a clear button, and an assistive icon (possibly for help or information).
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