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practice molecule lewis structure does it contain polar bonds? is the m…

Question

practice
molecule lewis
structure does it
contain polar
bonds? is the
molecule
polar? intermolecular forces present
van der
waals (√)
dipole-dipole
(√)
hydrogen
bonds (√)
pcl₃
f₂
bf₃
ccl₄
hf
h₂o
ch₃cl

Explanation:

Brief Explanations
  • For \(PCl_{3}\):
  • Lewis structure: Phosphorus is the central atom. It has 5 valence electrons. Three are used to form bonds with chlorine atoms (each chlorine has 7 valence electrons). There is one lone pair on phosphorus. The structure is trigonal pyramidal.
  • Polar bonds: \(P - Cl\) bonds are polar (electronegativity difference: \(Cl(3.0) - P(2.1)=0.9\)).
  • Molecular polarity: The molecule is polar due to the trigonal - pyramidal shape (lone pair causes asymmetry).
  • Intermolecular forces: Van der Waals (all molecules have this), dipole - dipole (because it is polar).
  • For \(F_{2}\):
  • Lewis structure: Each fluorine atom has 7 valence electrons. They share one pair of electrons (\(F - F\) single bond).
  • Polar bonds: \(F - F\) bond is non - polar (electronegativity difference \(=0\)).
  • Molecular polarity: Non - polar.
  • Intermolecular forces: Only van der Waals.
  • For \(BF_{3}\):
  • Lewis structure: Boron is the central atom with 3 valence electrons. It forms three \(B - F\) bonds (each \(F\) has 7 valence electrons). The structure is trigonal planar.
  • Polar bonds: \(B - F\) bonds are polar (\(F(4.0)-B(2.0)=2.0\)).
  • Molecular polarity: Non - polar (trigonal planar symmetry cancels out bond dipoles).
  • Intermolecular forces: Only van der Waals.
  • For \(CCl_{4}\):
  • Lewis structure: Carbon is the central atom with 4 valence electrons. It forms four \(C - Cl\) bonds (each \(Cl\) has 7 valence electrons). The structure is tetrahedral.
  • Polar bonds: \(C - Cl\) bonds are polar (\(Cl(3.0)-C(2.5)=0.5\)).
  • Molecular polarity: Non - polar (tetrahedral symmetry cancels out bond dipoles).
  • Intermolecular forces: Only van der Waals.
  • For \(HF\):
  • Lewis structure: Hydrogen (1 valence electron) and fluorine (7 valence electrons) share one pair (\(H - F\) bond).
  • Polar bonds: \(H - F\) bond is polar (\(F(4.0)-H(2.1)=1.9\)).
  • Molecular polarity: Polar.
  • Intermolecular forces: Van der Waals, dipole - dipole, and hydrogen bonds (\(H\) is bonded to highly electronegative \(F\)).
  • For \(H_{2}O\):
  • Lewis structure: Oxygen (6 valence electrons) is the central atom. It forms two \(O - H\) bonds (each \(H\) has 1 valence electron). There are two lone pairs on oxygen. The structure is bent.
  • Polar bonds: \(O - H\) bonds are polar (\(O(3.5)-H(2.1)=1.4\)).
  • Molecular polarity: Polar (bent shape causes asymmetry).
  • Intermolecular forces: Van der Waals, dipole - dipole, and hydrogen bonds (\(H\) is bonded to highly electronegative \(O\)).
  • For \(CH_{3}Cl\):
  • Lewis structure: Carbon is the central atom. It forms three \(C - H\) bonds (\(H\) has 1 valence electron) and one \(C - Cl\) bond (\(Cl\) has 7 valence electrons). The structure is tetrahedral (asymmetrical due to \(Cl\)).
  • Polar bonds: \(C - Cl\) bond is polar (\(Cl(3.0)-C(2.5)=0.5\)), \(C - H\) bonds are slightly polar (\(C(2.5)-H(2.1)=0.4\)).
  • Molecular polarity: Polar.
  • Intermolecular forces: Van der Waals, dipole - dipole.

Answer:

MoleculeLewis structureDoes it contain polar bonds?Is the molecule polar?Intermolecular Forces present
\(F_{2}\)\(F - F\) single bondNoNoVan der Waals (\(\checkmark\))
\(BF_{3}\)Central \(B\) with three \(B - F\) bonds (trigonal planar)YesNoVan der Waals (\(\checkmark\))
\(CCl_{4}\)Central \(C\) with four \(C - Cl\) bonds (tetrahedral)YesNoVan der Waals (\(\checkmark\))
\(HF\)\(H - F\) single bondYesYesVan der Waals (\(\checkmark\)), Dipole - dipole (\(\checkmark\)), Hydrogen bonds (\(\checkmark\))
\(H_{2}O\)Central \(O\) with two \(O - H\) bonds and two lone pairs (bent)YesYesVan der Waals (\(\checkmark\)), Dipole - dipole (\(\checkmark\)), Hydrogen bonds (\(\checkmark\))
\(CH_{3}Cl\)Central \(C\) with three \(C - H\) and one \(C - Cl\) bond (asymmetric tetrahedral)YesYesVan der Waals (\(\checkmark\)), Dipole - dipole (\(\checkmark\))