Q.1 mole of H gas is contained in a box of volume = 1.00 m at = 300K. The gas is heated to a temperature of = 3000K and the gas gets converted to a gas of hydrogen atoms. The final pressure would be (considering all gases to be ideal)
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Start your 14-day free trial to unlock the full solution →The key idea is that heating H₂ from 300 K to 3000 K dissociates each molecule into two atoms, doubling the number of moles. Combined with the tenfold temperature increase, the ideal gas law gives a final pressure 20 times the initial pressure.
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Start with the ideal gas law. For an ideal gas, . Initially, we have 1 mole of H₂ gas at and volume . The initial pressure is .
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What happens when the gas is heated? The temperature rises to . But more importantly, the H₂ molecules dissociate into hydrogen atoms: . Each mole of H₂ becomes 2 moles of H atoms. So the number of moles changes from to .
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Apply the ideal gas law to the final state. The final pressure is . Since the volume and the gas constant are unchanged, we can compare directly:
So . …
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