QUESTION IMAGE
Question
- chemical name: difluoroethylene formula: c₂h₂f₂ lewis electron - dot structure: (draw two different structures in which a single f is bonded to each c and a single h is bonded to each c and the cs are bound to each other.) perspective drawing with bond angles: structure 1 structure 2 standard electron geometry: c₁: c₂: c₁: c₂: molecular geometry: c₁: c₂: c₁: c₂: hybridization of central atoms: c₁: c₂: c₁: c₂: is the molecule polar or nonpolar?
Step1: Determine Lewis structures
The two possible Lewis - electron dot structures for $C_2H_2F_2$ with a single $F$ and a single $H$ bonded to each $C$ and $C - C$ bond are the cis - and trans - isomers. In the cis - isomer, the two $F$ atoms are on the same side of the $C = C$ double bond, and in the trans - isomer, the two $F$ atoms are on opposite sides of the $C = C$ double bond.
Step2: Analyze electron geometry
Each carbon atom in $C_2H_2F_2$ has 3 electron - groups (2 single bonds and 1 double bond). According to VSEPR theory, the standard electron geometry around each $C$ atom for both structures is trigonal planar.
Step3: Determine molecular geometry
Since there are no lone pairs on the central $C$ atoms and 3 bonding groups around each $C$, the molecular geometry around each $C$ atom is also trigonal planar for both structures.
Step4: Find hybridization
With 3 electron - groups around each $C$ atom, the hybridization of each $C$ atom is $sp^2$ for both structures.
Step5: Check polarity
In the cis - isomer, the bond dipoles of the $C - F$ bonds do not cancel out due to the asymmetric arrangement of the $F$ atoms, so the cis - $C_2H_2F_2$ is polar. In the trans - isomer, the bond dipoles of the $C - F$ bonds are equal in magnitude but opposite in direction, so the trans - $C_2H_2F_2$ is non - polar.
Structure 1 (Cis - isomer)
- Standard electron geometry:
- $C_1$: Trigonal planar
- $C_2$: Trigonal planar
- Molecular geometry:
- $C_1$: Trigonal planar
- $C_2$: Trigonal planar
- Hybridization of central atoms:
- $C_1$: $sp^2$
- $C_2$: $sp^2$
- Is the molecule polar or non - polar? Polar
Structure 2 (Trans - isomer)
- Standard electron geometry:
- $C_1$: Trigonal planar
- $C_2$: Trigonal planar
- Molecular geometry:
- $C_1$: Trigonal planar
- $C_2$: Trigonal planar
- Hybridization of central atoms:
- $C_1$: $sp^2$
- $C_2$: $sp^2$
- Is the molecule polar or non - polar? Non - polar
It is not possible to draw the Lewis structures and perspective drawings in this text - based format, but the above text provides the necessary information for filling out the table. For the Lewis structures, in the cis - isomer, the two $F$ atoms are on the same side of the double bond and in the trans - isomer, they are on opposite sides. For the perspective drawing, in a trigonal planar geometry around each $C$ atom, the bond angles are approximately $120^{\circ}$.
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
Step1: Determine Lewis structures
The two possible Lewis - electron dot structures for $C_2H_2F_2$ with a single $F$ and a single $H$ bonded to each $C$ and $C - C$ bond are the cis - and trans - isomers. In the cis - isomer, the two $F$ atoms are on the same side of the $C = C$ double bond, and in the trans - isomer, the two $F$ atoms are on opposite sides of the $C = C$ double bond.
Step2: Analyze electron geometry
Each carbon atom in $C_2H_2F_2$ has 3 electron - groups (2 single bonds and 1 double bond). According to VSEPR theory, the standard electron geometry around each $C$ atom for both structures is trigonal planar.
Step3: Determine molecular geometry
Since there are no lone pairs on the central $C$ atoms and 3 bonding groups around each $C$, the molecular geometry around each $C$ atom is also trigonal planar for both structures.
Step4: Find hybridization
With 3 electron - groups around each $C$ atom, the hybridization of each $C$ atom is $sp^2$ for both structures.
Step5: Check polarity
In the cis - isomer, the bond dipoles of the $C - F$ bonds do not cancel out due to the asymmetric arrangement of the $F$ atoms, so the cis - $C_2H_2F_2$ is polar. In the trans - isomer, the bond dipoles of the $C - F$ bonds are equal in magnitude but opposite in direction, so the trans - $C_2H_2F_2$ is non - polar.
Structure 1 (Cis - isomer)
- Standard electron geometry:
- $C_1$: Trigonal planar
- $C_2$: Trigonal planar
- Molecular geometry:
- $C_1$: Trigonal planar
- $C_2$: Trigonal planar
- Hybridization of central atoms:
- $C_1$: $sp^2$
- $C_2$: $sp^2$
- Is the molecule polar or non - polar? Polar
Structure 2 (Trans - isomer)
- Standard electron geometry:
- $C_1$: Trigonal planar
- $C_2$: Trigonal planar
- Molecular geometry:
- $C_1$: Trigonal planar
- $C_2$: Trigonal planar
- Hybridization of central atoms:
- $C_1$: $sp^2$
- $C_2$: $sp^2$
- Is the molecule polar or non - polar? Non - polar
It is not possible to draw the Lewis structures and perspective drawings in this text - based format, but the above text provides the necessary information for filling out the table. For the Lewis structures, in the cis - isomer, the two $F$ atoms are on the same side of the double bond and in the trans - isomer, they are on opposite sides. For the perspective drawing, in a trigonal planar geometry around each $C$ atom, the bond angles are approximately $120^{\circ}$.