QUESTION IMAGE
Question
rank the elements or compounds in the table below in decreasing order of their boiling points. that is, choose 1 next to the substance with the highest boiling point, choose 2 next to the substance with the next highest boiling point, and so on.
| substance | a | b | c | d |
|---|---|---|---|---|
| boiling point | select < | select < | select < | select < |
Step1: Analyze intermolecular forces
Boiling - point is related to the strength of intermolecular forces. $H_2O$ has hydrogen - bonding, dipole - dipole forces and London dispersion forces. $HCl$ has dipole - dipole forces and London dispersion forces. $HgCl_2$ has London dispersion forces and some ionic character due to the electronegativity difference between $Hg$ and $Cl$. $H_2$ has only London dispersion forces.
Step2: Rank based on intermolecular forces strength
Hydrogen - bonding is the strongest among these intermolecular forces in this set. So, $H_2O$ has the highest boiling point. Among $HCl$ and $HgCl_2$, $HCl$ has a smaller molar mass compared to $HgCl_2$. Generally, for non - hydrogen - bonded substances, the higher the molar mass, the stronger the London dispersion forces. So, $HgCl_2$ has stronger London dispersion forces than $HCl$. And $H_2$ has the weakest intermolecular forces due to its non - polar nature and low molar mass.
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- $H_2O$
- $HgCl_2$
- $HCl$
- $H_2$