
Interpretation:The strongest intermolecular force present in potassium oxide has to be given.
Intermolecular forces: Intermolecular force is electrostatic in nature and includesVan der Waals forces and hydrogen bonds. Molecules in liquids are held to other molecules by intermolecular interactions, which are weaker than the intramolecular interactions that hold the atoms together within molecules and polyatomic ions. The three main types of intermolecular interactions are:
- Dipole-dipole interactions
- London dispersion forces
- Hydrogen bonds
Solids can be classified into four types, namely:
- Molecular solids: In molecular solids, Van der Waals forces, hydrogen bonds or both hold most of the atoms or small molecules.
- Covalent network solids: In a covalent network solid, all the atoms are held in place by covalent bonds.
- Ionic solids: In ionic solids, oppositely charged ions are held together by electrostatic attractions that are very strong, comparable in strength to covalent bonds.
- Metallic solids: Metallic solids are formed by metal atoms and they have metallic bonding present in them.

Answer to Problem 11STP
The strongest intermolecular force present in potassium oxide is ionic bonding.
Explanation of Solution
Potassium oxide
In ionic solids, oppositely charged ions are held together by electrostatic attractions that are very strong, comparable in strength to covalent bonds.
Potassium oxide exists as ions
Potassium oxide is an ionic solid and the strongest intermolecular force present in potassium oxide is ionic bonding.
Chapter 14 Solutions
World of Chemistry, 3rd edition
- Consider the following half-reactions: Hg2+(aq) + 2e– → Hg(l) E°red = +0.854 V Cu2+(aq) + 2e– → Cu(s)E°red = +0.337 V Ni2+(aq) + 2e– → Ni(s) E°red = -0.250 V Fe2+(aq) + 2e– → Fe(s) E°red = -0.440 V Zn2+(aq) + 2e– → Zn(s) E°red = -0.763 V What is the best oxidizing agent shown above (i.e., the substance that is most likely to be reduced)?arrow_forwardCalculate the equilibrium constant, K, for MnO2(s) + 4 H+(aq) + Zn(s) → Mn2+(aq) + 2 H2O(l) + Zn2+(aq)arrow_forwardIn the drawing area below, draw the condensed structures of formic acid and ethyl formate. You can draw the two molecules in any arrangement you like, so long as they don't touch. Click anywhere to draw the first atom of your structure. A C narrow_forward
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