QUESTION IMAGE
Question
try: for each pair of compounds:
circle the compound of each pair that would have the higher melting and boiling point (ie. stronger imfs).
a. nacl and hcl
b. h₂o and n₂o
c. co and co₂
Step1: Analyze the intermolecular forces (IMFs) in NaCl and HCl
NaCl is an ionic compound. Ionic compounds have strong ionic bonds (a type of IMF). HCl is a polar covalent compound. It has dipole - dipole forces. Ionic bonds are stronger than dipole - dipole forces.
Step2: Analyze the intermolecular forces (IMFs) in \(H_2O\) and \(N_2O\)
\(H_2O\) can form hydrogen bonds. \(N_2O\) has dipole - dipole forces. Hydrogen bonds are stronger than dipole - dipole forces.
Step3: Analyze the intermolecular forces (IMFs) in \(CO\) and \(CO_2\)
\(CO\) is a polar molecule with dipole - dipole forces. \(CO_2\) is a non - polar molecule with London dispersion forces. Dipole - dipole forces are stronger than London dispersion forces.
Snap & solve any problem in the app
Get step-by-step solutions on Sovi AI
Photo-based solutions with guided steps
Explore more problems and detailed explanations
a. NaCl; b. \(H_2O\); c. \(CO\)