U.S. National Chemistry Olympiad: 1990 National Test 1. In moving from left to right across a period in the periodic table of the elements
2. Which transition is associated with the largest change in energy in the hydrogen atom?
3. In which pair are the elements most similar in their chemical properties?
4. A 4.0 g sample of impure Ca(NO3)2 was found to contain 0.85 g of calcium. What percentage of Ca(NO3)2 was in the original sample? (molar mass of Ca(NO3)2 = 164.1 g mol¯1)
5. Aluminum hydroxide, Al(OH)3, is insoluble in water, but dissolves readily in both acidic and basic solutions. Such behavior is characteristic of
6. The freezing point of a 1.00 m aqueous solution of HF is found to be -1.91 °C. The freezing point constant is water, kf, is 1.86 K m¯1. What is the percent of dissociation of HF at this concentration?
7. Enthapies of formation cannot be measured for many compounds directly, and must be calculated from combustion data. Given the following data, calculate the heat of formation of glucose, C6H12O6.
8. If the enthalpy of fusion of iodine is +15.5 kJ mol¯1, and the enthalpy of sublimaiton of iodine is +57.3 kJ mol¯1, what is the enthalpy of vaporization of iodine?
9. If, for N2, DHvap = 5.58 kJ mol¯1 and DSvap = 72.1 J mol¯1 K¯1, at low temperatures, in what phase will N2 be at -165 °C?
10. Which of the following molecules contains a central atom which is sp2 hybridized?
11. Which of the following molecules has at least one non-bonding pair of electrons on the central atom?
12. Which of the following statements about ionic compounds is false?
13. The pH of a saturated solution of calcium hydroxide is 12.40. What is Ksp for this salt?
14. The mass of a nitrogen gas molecule is 14 times that of a hydrogen molecule. What is the hydrogen molecule's velocity, relative to that of the nitrogen molecule (VN2), if both are at the same temperature?
15. The Ksp of PbBr2 is 6.3 x 10¯6. If 50 mL of 0.020 M Pb(NO3)2 are mixed with 50 mL of 0.010 M CaBr2, which of the following is true?
16. According to the phase diagram to the right, if the pressure is increased at constant temperature, from point A, what change will occur?
17. How many of the following salts will be more soluble in acid solution than in pure water? CdCO3, Mn(OH)2, PbS, PbCl2
18. A 50.0 mL sample of nitrogen gas is collected over water at 25 °C and 720 torr. What is the volume in mL of the dry gas at STP? (The vapor pressure of water at 25 °C is 23.8 torr.)
19. To which of the following would addition of an equal volume of 0.50 M NaOH lead to a solution having a lower pH?
20. Consider the solvent effect on acid dissociation. Would you expect HCl to be weak or strong in the two solvents, water and benzene (C6H6)?
21. The equilibrium constant for the equation below is very small; that is, K << 1. HX (aq) + Y¯(aq) <===> X¯ (aq) + HY (aq) Which statement is true?
22. Consider the reaction 3A (g) + 2B (g) <===> C (g). Initially, only A and C are present, each at a concentration of 0.20 M. At equillibrium, the concentration of B is 0.10 M. What is the value of the equilibrium constant, Kc, for the reaction?
23. Consider the system NH4Cl (s) <===> NH3 (g) + HCl (g) If the concentration of ammonia gas is tripled, the value of the equilibrium constant will
24. The weak base ionization constant (Kb) for hydroxylamine, HONH2, is 1.1 x 10¯8. Which of the following equations best describes its ionization equilibrium?
25. Which substance, when added to water, will NOT change the pH?
26. How many O2 molecules are contained in 2.0 liters of oxygen gas at 27 °C and 3.0 atm pressure?
27. What is the vapor pressure of an isopropanol solution containing 80.0 g of the nonvolatile solute glycerol (C3H8O3, molar mass = 92.0 g mol¯1) and 212 g is isopropanol (C3H8O, molar mass = 60.0 g mol¯1) at 68 °C? (The vapor pressure of isopropanol at 68 °C is 400 torr.)
28. If 40.0 mL of 0.20 M CH3COOH are titrated with 0.20 M NaOH, how many mL of base must be added to form a buffer solution with the greatest buffering capacity?
29. An important reaction in the production for nitrogen fertilizers is 4NH3 (g) + 5O2 (g) --> 4NO (g) + 6 H2O (g) At constant temperature and pressure, what is the maximum number of liters of NO (g) that can be produced from 14.0 L of NH3 and 16.0 L of O2?
30. Which of the following graphs for an ideal gas, when all other variables are held constant, will NOT yield a straight line?
31. What is the equilibrium constant for a reaction that has a value of DG = - 41.8 kJ at 100 °C?
32. How much heat must be removed from a 10.0 g ingot of stainless steel in order to lower its temperature from 60.0 °C to 35.0 °C? (The specific heat of stainless steel is 0.51 J g¯1 K¯1.)
33. What is the standard molar entropy change, DS, for the synthesis of ammonia, using the following data.
34. Which of the following reactions is accompanied by a decrease in entropy?
35. Trouton's Rule, which states that font face="Symbol">DHvap / Tbp = 85 J mol¯1 K¯1 (a constant) for nonpolar liquids, relates to the entropy change for the vaporization process, DSvap. Knowing this, how would the value for water differ from this constant?
36. At equilibrium, the Gibbs free energy function of a reaction, DG, has a value
37. An ammonia solution has a density of 0.910 g cm¯3 and is 25.0% NH3 by mass. What is the molarity of the solution?
38. Which of the following molecules has a measurable dipole moment?
39. Which type of crystal structure best describes that present in diamond?
40. Which of the following substances has the highest melting point?
41. Which of the following does not define a covalent bond?
42. How many equivalent contributing resonance forms does the ion NO3¯ have?
43. Which compound is the anhydride of sulfurous acid?
44. Which is the most accurate description of Na+ species in dilute aqueous solution?
45. Which of the following oxides, at the same concentration when dissolved in water, results in the most acidic solution?
46. Which of the following salts should form a colorless solution when dissolved in water?
47. Which of the following can act as a Lewis base?
48. The shape of the phosphite ion, PO33¯, is best described as
49. What is the ground state electron configuration of the Mn2+ ion?
50. Which group of metals has the lowest melting points?
51. Which solution has the highest electrical conductivity?
52. Which of the following compounds exhibit geometric isomerism?
53. What hybrid orbitals are used by each nitrogen atom in N2F2?
54. From the Lewis structures given below, choose the invalid one. 55. The compounds Br2 (159.8 g mol¯1) and ICl (162.4 g mol¯1) have similar molar masses, yet ICl boils at 97 °C and Br2 boils at 59 °C. Which statement best explains this difference?
56. Which one of the following salts is expected to give a red color in a flame test?
57. Which of the following metals exhibits the greatest variety of oxidation states?
58. In spontaneous beta particle (b¯) emission, what is the source of the emitted electron?
59. Which one of the compounds below is classified as a peroxide?
60. Which of the following sets of ions is generally associated with "hard" water?
61. The boiling points of four liquids are shown. Which liquid has the highest vapor pressure at 25 °C?
62. Which term best describes a 0.10 M solution of Fe(NO3)3?
63. Very strong acids, such as HNO3 and HCl, appear to be equally strong in water. This "leveling effect" of water occurs because
64. If the equilibrium P4(g) + 6 Cl2(g) <===> 4 PCl3(g) is established by adding equal numbers of moles of P4 and Cl2 to an evacuated flask, which of the following must be true at equilibrium?
65. Consider the equilibrium NH4HS(s) <===> NH3(g) + H2S(g). A 4.65 g sample of solid NH4HS is placed in an evacuated 3.0 L flask at 35 °C and allowed to reach equilibrium at which time the total pressure in the flask is 0.82 atm. What is the value of Kp at this temperature?
66. When propanol, CH3CH2CH2OH, is oxidized to propanoic acid, CH3CH2COOH, what is the number of electrons on the right side of the half-reaction?
67. What is the [Cu2+] in the cell Zn / Zn2+ (0.05 M) // Cu2+ (X M) / Cu if the cell voltage is 1.03 V?
68. Ten amperes are passed through molten aluminum chloride for 5.5 hours. How many grams of aluminum metal could be produced by this electrolysis?
69. What is the DG° for the reaction 2 Al3+ + 6 I¯---> 2 Al + 3 I2, at 298 K?
70. How many of the following would shift this reaction to the right? PbO2(s) + 4 H+ + Cu(s) ---> Pb2++ 2 H2O + Cu2+ Acid is added.
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