Draw a Lewis structure that obeys the octet rule for
each of the following ions. Assign formal charges to each atom.Draw
a Lewis structure that obeys the octet rule for each of
the following ions. Assign formal charges to each atom.
ClO3−
NO3−
Write a Lewis structure for the phosphorus trifluoride molecule, PF3. Is the octet rule satisfied for all the atoms in your structure? (b) Determine the oxidation numbers of the P and F atoms. (c) Determine the formal charges of the P and F atoms. (d) Is the oxidation number for the P atom the same as its formal charge? Explain why or why not.
A valid Lewis structure of ________ cannot be drawn without
violating the octet rule.
a)
NI3
b)
SO2
c) ICl5
d) SiF4
Please show the Lewis structure for each so I can try to better
understand.
1.Draw a Lewis structure for each of them. Remember that some
molecules violate the Octet Rule in different ways. Some of these
use multiple bonds and some don't. You need to figure out which do.
Use the rules we had in class for writing Lewis structures and
compare with these with the molecules we did write Lewis structures
for. None of these have resonance structures.
SF6 CH4 I3-
N2 XeF4 NH3
OH- CO C2H4 (in this molecule
there is...
Draw a Lewis structure for PSF3 in
which the octet rule is satisfied on all atoms and show all
NONZERO formal charges on all atoms.
Do not include the overall ion charge in your answer.
Based on formal charge, what is the best Lewis structure for the
molecule?
Draw a Lewis structure for SO2 in which all atoms obey the octet rule. Show formal charges. Do not consider ringed structures.
Draw a Lewis structure for SO2 in which all atoms have a formal charge of zero. Explicitly showing the zero charges is optional. Do not consider ringed structures.
Draw the Lewis Structure for each molecule. Remember that the best structure will have a few Formal Charges as possible. Molecules which break the octet rule are denoted with