Calculate the pressure exerted by `22g` of `CO_(2)` in `0.5 dm^(3)` at `300 K` using (`a`) the ideal gas law and (`b`) the van der Waals equation. Given `a=300.0 kPa dm^(6) mol^(-2)` and `b=40.0 cm^(3) mol^(-1)`.

Calculate the pressure exerted by `22g` of `CO_(2)` in `0.5 dm^(3)` at

1.	Calculate the pressure exerted by `22g` of `CO_(2)` in `0.5 dm^(3)` at `300 K` using (`a`) the ideal gas law and (`b`) the van der Waals equation. Given `a=300.0 kPa dm^(6) mol^(-2)` and `b=40.0 cm^(3) mol^(-1)`.
Answer» Moles of `CO_(2)=(w)/(Molar weight)=(22 g)/(44 g mol^(-1))=0.5 mol` `V=0.5 dm^(3)`, `T=300 K`, `a=300.0 kPa dm^(6)mol^(-2)` `b=40.0 cm^(3)mol^(-1)=0.04dm^(3)mol^(-1)` (`a`) From ideal gas law `P=(nRT)/(V)`, we have `P=((0.5)(8.314)xx300)/(0.5)=2494.2 Pa=2.49xx10^(3)kPa` (`b`) From the van der Waals equation, we get `P=(nRT)/(V-nb)-(n^(2)a)/(V^(2))` `:. P=((0.5)xx(8.314)xx300)/((0.5)-(0.5)(0.04))-((0.5)^(2)xx(300))/((0.5)^(2))` `=2598.12 kPa-300kPa=2298.12 kPa`

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Calculate the pressure exerted by `22g` of `CO_(2)` in `0.5 dm^(3)` at `300 K` using (`a`) the ideal gas law and (`b`) the van der Waals equation. Given `a=300.0 kPa dm^(6) mol^(-2)` and `b=40.0 cm^(3) mol^(-1)`.

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