5. Considening your answers to the previous three questions, explain why CO, is not bent? 6. Explain why H,O is not linear.

Chemistry
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Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
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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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Please answer question 5 and 6
2. What is the electrostatic charge of all electron groups. either shared (Le. bonds) or unshared?
3. Since all electron groups have this same charge. do they attract or repel each other?
4. How many unshared electron pairs are present in the carbon atom in CO,?
5. Considening your answers to the previous three questions, explain why CO, is not bent?
6. Explain why H,O is not linear.
If you wish to read more about the theory that explains molecular shapes, here's a link to Chem
Reading-Valence Shell Electron Repulsion Theory.
PART 2-MOLECULAR POLARITY
Procedures:
1. Determine the type of each bond in each of the molecules drawn. (Remember, if the
electronegativity difference is between 0.5 and 2.0 inclusive, then it is a polar covalent bond with
the positive dipole at the element with the lesser electronegativity and the negative dipole at the
element with the greater electronegativity. Treat multiple bonds as d they were singles.)
Transcribed Image Text:2. What is the electrostatic charge of all electron groups. either shared (Le. bonds) or unshared? 3. Since all electron groups have this same charge. do they attract or repel each other? 4. How many unshared electron pairs are present in the carbon atom in CO,? 5. Considening your answers to the previous three questions, explain why CO, is not bent? 6. Explain why H,O is not linear. If you wish to read more about the theory that explains molecular shapes, here's a link to Chem Reading-Valence Shell Electron Repulsion Theory. PART 2-MOLECULAR POLARITY Procedures: 1. Determine the type of each bond in each of the molecules drawn. (Remember, if the electronegativity difference is between 0.5 and 2.0 inclusive, then it is a polar covalent bond with the positive dipole at the element with the lesser electronegativity and the negative dipole at the element with the greater electronegativity. Treat multiple bonds as d they were singles.)
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