A 10.0 L tank at 0.86 °C is filled with 12.3 g of dinitrogen difluoride gas and 9.28 g of chlorine pentafluoride 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. dinitrogen difluoride chlorine pentafluoride mole fraction: partial pressure: mole fraction: partial pressure: Total pressure in tank: 00 0 atm atm atm 0 10 X

Chemistry by OpenStax (2015-05-04)
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Chapter9: Gases
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Problem 101E: Under which of the following sets of conditions does a real gas behave most like an ideal gas, and...
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A 10.0 L tank at 0.86 °C is filled with 12.3 g of dinitrogen difluoride gas and 9.28 g of chlorine pentafluoride 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.
dinitrogen difluoride
chlorine pentafluoride
mole fraction:
partial pressure:
mole fraction:
partial pressure:
Total pressure in tank:
00
atm
au
atm
x10
X
Transcribed Image Text:A 10.0 L tank at 0.86 °C is filled with 12.3 g of dinitrogen difluoride gas and 9.28 g of chlorine pentafluoride 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. dinitrogen difluoride chlorine pentafluoride mole fraction: partial pressure: mole fraction: partial pressure: Total pressure in tank: 00 atm au atm x10 X
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