CHEMISTRY 101 SPRING 2003 EXAM 3 FORM A SECTIONS DR. KEENEY-KENNICUTT PART 1

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NAME CHEMISTRY 101 SPRING 2003 EXAM 3 FORM A SECTIONS 501-509 DR. KEENEY-KENNICUTT Directions: (1) Put your name, S.I.D. number and signature on the free response part of the exam where indicated. (2) Each multiple choice question is actually 2 questions on your scanning sheet. If you are sure of an answer, put the same answer down for both questions for 5 pts. If you cannot decide between two answers, put one answer down for one question and the other answer down for the other question. If you get one correct you'll get half credit for 2.5 pts. If there is an ambiguous multiple choice question, use the last page to explain your answer. (3) Do NOT write on the envelope. (4) Bubble in OPTION A on the scanning sheet IF you want your grade posted. (5) When finished, put the free response answers in the envelope with the scanning sheet. You can keep the multiple choice part - the answers will be given to you as you leave. (6) There are a total of 28 questions (16 actual questions) - 104 pts. PART 1 1&2. Which of the following Lewis dot formulas for an isolated atom of carbon is CORRECT? (a) (b) (c) (d) (e) 3&4. In the reaction: H 2 CO 3 + HBrO 3 H 3 CO 3 + + BrO 3 -. (a) H 2 CO 3 is a base and HCO 3 - is its conjugate acid. (b) HBrO 3 is a base and H 3 CO + 3 is its conjugate acid (c) HBrO 3 is a base and BrO 3 - is its conjugate acid (d) H 3 CO + 3 is a base and H 2 CO 3 is its conjugate acid (e) BrO 3 - is a base and HBrO 3 is its conjugate acid 5&6. The electron affinity of chlorine is best represented by the reaction: (a) Cl(g) + e - Cl - (g) (b) Cl 2 (g) Cl 2 - (g) + e - (c) Cl(g) + e - Cl + (g) (d) Cl(g) Cl - (g) + e - (e) Cl(g) Cl + (g) + e - Keeney-Kennicutt, 2003 A1

7&8 Which species is NOT isoelectronic with xenon? (a) Br (b) Te 2 (c) Ba 2+ (d) Cs + (e) Sb 3 9&10. Which of the following bonds is classified as nonpolar covalent? (a) C-Cl (b) Na-Cl (c) S-P (d) N-Cl (e) C-O 11&12. Which molecule or ion does NOT have a trigonal planar electronic geometry? (a) BCl 3 (b) SO 2 (c) NO 3 - (d) BrF 3 (e) AlH 3 13&14. The carbonate ion has resonance structures. (a) 1 (b) 2 (c) 3 (d) 4 (e) none Keeney-Kennicutt, 2003 A2

15&16. Draw the Lewis dot formula for acetone. How many sigma and pi bonds are present in a molecule of acetone? (a) 8 σ bonds and 2 π bonds (c) 7 σ bonds and 1 π bond (e) 9 σ bonds and 2 π bonds (b) 9 σ bonds and 1 π bond (d) 5 σ bonds and 2 π bonds 17&18. According to Valence Bond Theory and Valence Shell Electron Pair Repulsion Theory, if the electronic geometry of an atom is octahedral, the hybridization is (a) sp (b) sp 2 (c) sp 3 (d) sp 3 d (e) sp 3 d 2 19&20. Which of the following statements is FALSE? (a) The Ba atom is larger than the Mg atom. (b) The electron affinity of Br is more negative than that of Ca. (c) The ionization energy of Si is less than that of Cl. (d) The radii of Fe 3+ is smaller than that of Fe. (e) In order of decreasing radii: Cl - > S 2 - > P 3 - OVER Keeney-Kennicutt, 2003 A3

21&22. Calculate the normality of a 150. ml solution that contains 5.00 g of H 3 PO 4? Assume that the acid is to be neutralized completely. (a) 1.02 N (b) 0.870 N (c) 0.335 N (d) 0.113 N (e) 0.667 N 23&24. How many milliliters of a 0.1012 N HCl solution is required to totally neutralize 25.86 ml of a 0.1134 N Ba(OH) 2 solution? (a) 23.08 ml (b) 28.98 ml (c) 46.16 ml (d) 57.96 ml (e) 14.49 ml Keeney-Kennicutt, 2003 A4

CHEMISTRY 101 EXAM 3 Form A SPRING 2003 S 501-509 NAME Signature PART 2 (24 pts) 25. For each of species, draw the Lewis dot structure (2 pts and don't forget all the electrons). For the central atom, give the number of regions of high electron density (2 pts), the hybridization (2 pts), electronic geometry (2 pts), the molecular (or ionic) geometry (2 pts), and say if the species has a dipole moment (is polar) or not (2 pt). (a) PF 2 - (b) SeF 4 PF 2 - SeF 4 Regions of High e - Density Hybridization Electronic Geometry Molecular/Ionic Geometry Has dipole moment (yes/no) (4 pts) Draw a 3-dimensional representation of these 2 species using wedges and dotted lines. Show all lone pairs of electrons. (a) PF 2 - (b) SeF 4 OVER Keeney-Kennicutt, 2003 A5

(6 points) 26. Write a short paragraph explaining the reasons why H 2 SO 4 and H 2 SO 3 have different acid strengths. Include in your paragraph the identity of the stronger acid (2 pts), comments about H-O bond strength and how it affects acid strength (2 pts), and the structures of the two acids (2 pt). (3 points) 27. Write the balanced acid-base reaction between 1 mole of H 3 PO 4 and 1 mole of NaOH. Keeney-Kennicutt, 2003 A6

28. Consider the acid-base reaction between H 3 PO 4 and NaOH. (1 pt) (a) Write the balanced acid-base reaction. Assume all the H's in H 3 PO 4 have been neutralized. (b) If 155 ml of 0.271 M H 3 PO 4 is added to 235 ml of 0.465 M NaOH, the resulting solution will be (2 pts) (i) composed of what salt and what excess reactant? (4 pts) (ii) What is the final concentration of the salt? Keeney-Kennicutt, 2003 A7

Keeney-Kennicutt, 2003 A8

SCRAP PAPER OR COMMENTS ON EXAM CHEMISTRY 101 EXAM 3 Form A Spring 2003 S 501-509 NAME Keeney-Kennicutt, 2003 A9