Question

Consider a sample of phosphine gas (PH3), that behaves as an ideal gas. If the density...

Consider a sample of phosphine gas (PH3), that behaves as an ideal gas. If the density of the gas is 4.18g/L at 17ºC. What is the pressure of the gas in torr?

I am having trouble getting these formulas to click in my head to the point where I can invert them based on values given. I'm not sure how to solve for P in this case. I feel like I'm missing a step. Thanks.

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Answer #1

Molecular weight of PH,, M.W-34.0 -5 R=0.0821 L-atm. mole-1 Temperature, T 27 °C mol -27+273 - 300 K Density of PH, gas 4.18

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