Previous Answers v Correct You are asked to construct a Lewis structure that does not require sulfur to expand its octet Start by determining the number of valence electrons in the structure. Since both oxygen and sulfur are in group 6A (16), both contribute six electrons each valence electrons in SO, = (electrons contributed by S) + (electrons contributed by O) = (1x 6) + (3 x 6) = 24 electrons Since sulfur is less electronegative than oxygen, start by placing it as the central atom. Connect all atoms with single bonds, and then place lone pairs of electrons. Finally, move a lone pair to form a multiple bond to complete the octet for sulfur. Once the electrons are properly placed, calculate the formal charge on each atom. The sum of the formal charges should equal zero because the molecule is neutral
Previous Answers v Correct You are asked to construct a Lewis structure that does not require sulfur to expand its octet Start by determining the number of valence electrons in the structure. Since both oxygen and sulfur are in group 6A (16), both contribute six electrons each valence electrons in SO, = (electrons contributed by S) + (electrons contributed by O) = (1x 6) + (3 x 6) = 24 electrons Since sulfur is less electronegative than oxygen, start by placing it as the central atom. Connect all atoms with single bonds, and then place lone pairs of electrons. Finally, move a lone pair to form a multiple bond to complete the octet for sulfur. Once the electrons are properly placed, calculate the formal charge on each atom. The sum of the formal charges should equal zero because the molecule is neutral
Chemistry
10th Edition
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Chapter1: Chemical Foundations
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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Part E and F are separate questions.
![Previous Answers
Correct
You are asked to construct a Lewis structure that does not require sulfur to expand its octet. Start by determining the number of valence electrons in the structure. Since both oxygen and sulfur are in group 6A (16), both contribute six
electrons each.
valence electrons in SO, = (electrons contributed by S) + (electrons contributed by O) = (1 × 6) + (3 x 6) =24 electrons
Since sulfur is less electronegative than oxygen, start by placing it as the central atom. Connect all atoms with single bonds, and then place lone pairs of electrons. Finally, move a lone pair to form a multiple bond to complete the octet for
sulfur. Once the electrons are properly placed, calculate the formal charge on each atom. The sum of the formal charges should equal zero because the molecule is neutral.](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F59db96a8-b0ec-4738-8e10-a8a69111bb88%2Fd05be596-b954-4e1c-805f-872ef4ee2882%2Fp1rkfza_processed.jpeg&w=3840&q=75)
Transcribed Image Text:Previous Answers
Correct
You are asked to construct a Lewis structure that does not require sulfur to expand its octet. Start by determining the number of valence electrons in the structure. Since both oxygen and sulfur are in group 6A (16), both contribute six
electrons each.
valence electrons in SO, = (electrons contributed by S) + (electrons contributed by O) = (1 × 6) + (3 x 6) =24 electrons
Since sulfur is less electronegative than oxygen, start by placing it as the central atom. Connect all atoms with single bonds, and then place lone pairs of electrons. Finally, move a lone pair to form a multiple bond to complete the octet for
sulfur. Once the electrons are properly placed, calculate the formal charge on each atom. The sum of the formal charges should equal zero because the molecule is neutral.
![Part E
Calculate the oxidation number of the atom S according to the Lewis structure in Part D.
Express your answer as a signed integer.
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Part F
Calculate the oxidation number of the atom O according to the Lewis structure in Part D.
Express your answer as a signed integer.
Submit
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Transcribed Image Text:Part E
Calculate the oxidation number of the atom S according to the Lewis structure in Part D.
Express your answer as a signed integer.
Submit
Request Answer
Part F
Calculate the oxidation number of the atom O according to the Lewis structure in Part D.
Express your answer as a signed integer.
Submit
Request Answer
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