QUESTION IMAGE
Question
part 3 (1 point) see hint add any nonzero formal charges to the atoms as applicable for the lewis structure shown with connectivity s - c - s. all valence electrons have been included, and this structure follows the octet rule. if formal charges are equal to zero, they should not be included.
Step1: Recall formal - charge formula
The formula for formal charge (FC) is $FC = V - N - \frac{B}{2}$, where $V$ is the number of valence electrons of the neutral atom, $N$ is the number of non - bonding electrons, and $B$ is the number of bonding electrons.
Step2: Calculate formal charge for carbon
Carbon (C) has 4 valence electrons ($V = 4$). In the $S = C = S$ structure, carbon has 0 non - bonding electrons ($N = 0$) and 8 bonding electrons ($B = 8$). Using the formula $FC = V - N-\frac{B}{2}$, we get $FC = 4-0 - \frac{8}{2}=4 - 4=0$.
Step3: Calculate formal charge for sulfur
Sulfur (S) has 6 valence electrons ($V = 6$). In the $S = C = S$ structure, each sulfur has 4 non - bonding electrons ($N = 4$) and 4 bonding electrons ($B = 4$). Using the formula $FC = V - N-\frac{B}{2}$, we get $FC = 6 - 4-\frac{4}{2}=6 - 4 - 2=0$.
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
No non - zero formal charges need to be added.