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I presume that molar mass is needed

n = pV/RT = 1 atm x 0.250 L/ 0.08206 x 273 K= 0.0112

molar mass = 2.50/ 0.0112 =224 g/mol

total moles = 5.0

3.5 / 5.0 = partial pressure CO2 / 7.0

partial pressure CO2 = 4.9 atm

Goodluck from Michigan tech - Charlesworth sucks

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.583 ATM

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Q: What is the partial pressure of carbon dioxide in a container that holds 5 moles of carbon dioxide 3 moles of nitrogen and 1 mole of hydrogen and has a total pressure of 1.05 ATM?
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