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QUESTION IMAGE

which member of each of the following pairs of substances would you exp…

Question

which member of each of the following pairs of substances would you expect to have a higher boiling point based on the intermolecular forces they exhibit?
part 1 of 2
select the single best answer.

part 2 of 2
select the single best answer.

Explanation:

Brief Explanations
  • For \(N_2\) and \(I_2\):
  • Both \(N_2\) and \(I_2\) are non - polar molecules. The intermolecular force acting between them is London dispersion force.
  • The strength of London dispersion force is proportional to the molar mass of the molecule.
  • The molar mass of \(N_2(M = 28\space g/mol)\) and \(I_2(M= 253.8\space g/mol)\). Since \(I_2\) has a higher molar mass, it has stronger London dispersion forces.
  • For \(SO_2\) and \(CO_2\):
  • \(CO_2\) is a non - polar molecule (\(O = C=O\), linear geometry, dipole moments cancel out). The intermolecular force acting between \(CO_2\) molecules is London dispersion force.
  • \(SO_2\) is a polar molecule (\(O - S - O\), bent geometry, dipole moment does not cancel out). The intermolecular forces acting between \(SO_2\) molecules are London dispersion forces and dipole - dipole forces.
  • Dipole - dipole forces are stronger than London dispersion forces (for molecules of comparable molar mass. The molar mass of \(SO_2(M = 64\space g/mol)\) and \(CO_2(M = 44\space g/mol)\)).

Answer:

  • Part 1 of 2: \(I_2\)
  • Part 2 of 2: \(SO_2\)