Chapter 9 Gases

9.8  Non-Ideal Gas Behavior

Learning Objectives

By the end of this section, you will be able to:

  • Describe the physical factors that lead to deviations from ideal gas behavior
  • Explain how these factors are represented in the van der Waals equation
  • Define compressibility (Z) and describe how its variation with pressure reflects non-ideal behavior
  • Quantify non-ideal behavior by comparing computations of gas properties using the ideal gas law and the van der Waals equation

Thus far, the ideal gas law, PV = nRT, has been applied to a variety of different types of problems, ranging from reaction stoichiometry and empirical and molecular formula problems to determining the density and molar mass of a gas. As mentioned in the previous modules of this chapter, however, the behavior of a gas is often non-ideal, meaning that the observed relationships between its pressure, volume, and temperature are not accurately described by the gas laws. In this section, the reasons for these deviations from ideal gas behavior are considered.

One way in which the accuracy of PV = nRT can be judged is by comparing the actual volume of 1 mole of gas (its molar volume, Vm) to the molar volume of an ideal gas at the same temperature and pressure. This ratio is called the compressibility factor (Z) with:

Z=molarvolumeofgasatsameTandPmolarvolumeofidealgasatsameTandP=(PVmRT)measured

Ideal gas behavior is therefore indicated when this ratio is equal to 1, and any deviation from 1 is an indication of non-ideal behavior. Figure 9.37 shows plots of Z over a large pressure range for several common gases.

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Figure 9.37  A graph of the compressibility factor (Z) vs. pressure shows that gases can exhibit significant deviations from the behavior predicted by the ideal gas law.

As is apparent from Figure 9.37, the ideal gas law does not describe gas behavior well at relatively high pressures. To determine why this is, consider the differences between real gas properties and what is expected of a hypothetical ideal gas.

Particles of a hypothetical ideal gas have no significant volume and do not attract or repel each other. In general, real gases approximate this behavior at relatively low pressures and high temperatures. However, at high pressures, the molecules of a gas are crowded closer together, and the amount of empty space between the molecules is reduced. At these higher pressures, the volume of the gas molecules themselves becomes appreciable relative to the total volume occupied by the gas. The gas therefore becomes less compressible at these high pressures, and although its volume continues to decrease with increasing pressure, this decrease is not proportional as predicted by Boyle’s law.

At relatively low pressures, gas molecules have practically no attraction for one another because they are (on average) so far apart, and they behave almost like particles of an ideal gas. At higher pressures, however, the force of attraction is also no longer insignificant. This force pulls the molecules a little closer together, slightly decreasing the pressure (if the volume is constant) or decreasing the volume (at constant pressure) (Figure 9.38). This change is more pronounced at low temperatures because the molecules have lower KE relative to the attractive forces, and so they are less effective in overcoming these attractions after colliding with one another.

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Figure 9.38  (a) Attractions between gas molecules serve to decrease the gas volume at constant pressure compared to an ideal gas whose molecules experience no attractive forces. (b) These attractive forces will decrease the force of collisions between the molecules and container walls, therefore reducing the pressure exerted at constant volume compared to an ideal gas.

There are several different equations that better approximate gas behavior than the ideal gas law does. The first, and simplest, was developed by the Dutch scientist Johannes van der Waals in 1879. The van der Waals equation improves upon the ideal gas law by adding two terms: one to account for the volume of the gas molecules and another for the attractive forces between them.

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The constant a corresponds to the strength of the attraction between molecules of a particular gas, and the constant b corresponds to the size of the molecules of a particular gas. The “correction” to the pressure term in the ideal gas law is

an2/V2 and the “correction” to the volume is nb. Note that when V is relatively large and n is relatively small, both of these correction terms become negligible, and the van der Waals equation reduces to the ideal gas law, PV = nRT. Such a condition corresponds to a gas in which a relatively low number of molecules is occupying a relatively large volume, that is, a gas at a relatively low pressure. Experimental values for the van der Waals constants of some common gases are given in Table 9.3.
Table 9.3  Values of van der Waals constants for some common gases

Gas

a (L2 atm/mol2)

b (L/mol)

N2

1.39

0.0391

O2

1.36

0.0318

CO2

3.59

0.0427

H2O

5.46

0.0305

He

0.0342

0.0237

CCl4

20.4

0.1383

At low pressures, the correction for intermolecular attraction, a, is more important than the one for molecular volume, b. At high pressures and small volumes, the correction for the volume of the molecules becomes important because the molecules themselves are incompressible and constitute an appreciable fraction of the total volume. At some intermediate pressure, the two corrections have opposing influences and the gas appears to follow the relationship given by PV = nRT over a small range of pressures. This behavior is reflected by the “dips” in several of the compressibility curves shown in Figure 9.37. The attractive force between molecules initially makes the gas more compressible than an ideal gas, as pressure is raised (Z decreases with increasing P). At very high pressures, the gas becomes less compressible (Z increases with P), as the gas molecules begin to occupy an increasingly significant fraction of the total gas volume.

Strictly speaking, the ideal gas equation functions well when intermolecular attractions between gas molecules are negligible and the gas molecules themselves do not occupy an appreciable part of the whole volume. These criteria are satisfied under conditions of low pressure and high temperature. Under such conditions, the gas is said to behave ideally, and deviations from the gas laws are small enough that they may be disregarded—this is, however, very often not the case.

Example 9.24 – Comparison of Ideal Gas Law and van der Waals Equation

A 4.25-L flask contains 3.46 mol CO2 at 229°C. Calculate the pressure of this sample of CO2 using…

(a)  the ideal gas law

(b)  the van der Waals equation

Explain the reason(s) for the difference.

 

Solution

(a)  From the ideal gas law:

 [latex]P = \frac {nRT}{V} = \frac {(3.46 \: \cancel {mol}) (0.08206 \: \cancel {L} \cdot atm/ \cancel {mol} \cdot \cancel {K}) (502 \: \cancel {K})}{4.25 \: \cancel {L}} = 33.5 \: atm[/latex]

 

(b)  From the van der Waals equation:

[latex]\left( P + \frac {n^2a}{V^2} \right) (V - nb) = nRT[/latex]
[latex][/latex]
[latex]P = \frac {nRT}{V - nb} - \frac {n^2a}{V^2}[/latex]
[latex][/latex]

[latex]P = \frac {(3.46 \: mol) (0.08206 \: L \cdot atm/mol \cdot K) (502 \: K)}{4.25 \: L - (3.46 \: mol) (0.0427 \: L/mol)} - \frac {(3.46 \: mol)^2 (3.59 \: L^2 \cdot atm \cdot mol^2)}{(4.25 \: L)^2}[/latex]

[latex]P = 32.4 \: atm[/latex]

This is not very different from the value from the ideal gas law because the pressure is not very high and the temperature is not very low. The value is somewhat different because CO2 molecules do have some volume and attraction between molecules, and the ideal gas law assumes they do not have volume or attractions.

 

Check your Learning

A 560-mL flask contains 21.3 g N2 at 145°C. Calculate the pressure of N2 using…

the ideal gas law

 

First, we must calculate the mols of N2:

[latex]n_{N_2} = 21.3 \; g \times \frac{1 \; mol}{28.02 \; g} = 0.760 \; mols[/latex]

Then, we must convert T and V to appropriate units:

[latex]T = (145 + 273) \; K = 418 \; K[/latex]

[latex]V = 560 \; mL \times \frac{1 \; L}{1000 \; mL} = 0.560 \; L[/latex]

Finally, we can use the ideal gas law to calculate the pressure:

 [latex]P = \frac {nRT}{V} = \frac {(0.760 \: \cancel {mol}) (0.08206 \: \cancel {L} \cdot atm/ \cancel {mol} \cdot \cancel {K}) (418 \: \cancel {K})}{0.560 \: \cancel {L}} = 46.562 \: atm[/latex]

[latex]= 46.6 \: atm[/latex]

 

the van der Waals equation
[latex]\left( P + \frac {n^2a}{V^2} \right) (V - nb) = nRT[/latex]
[latex][/latex]
[latex]P = \frac {nRT}{V - nb} - \frac {n^2a}{V^2}[/latex]
[latex][/latex]

[latex]P = \frac {(0.760 \: mol) (0.08206 \: L \cdot atm/mol \cdot K) (418 \: K)}{0.560 \: L - (0.760 \: mol) (0.0391 \: L/mol)} - \frac {(0.760 \: mol)^2 (1.39 \: L^2 \cdot atm \cdot mol^2)}{(0.560 \: L)^2}[/latex]

[latex]P = 46.594 \: atm = 46.6 \: atm[/latex]

 

Propose an explanation for why these pressures are more similar than those for COin the previous example.

 

Because N2 has smaller van der Waals constants (a and b) than CO2.

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9.8 Non-Ideal Gas Behavior Copyright © by Nicole Bouvier-Brown; Saori Shiraki; J. Ryan Hunt; and Emily Jarvis. All Rights Reserved.

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