U.S. National Chemistry Olympiad: 1996 National Test 1. What is the formula for the basic anhydride of Ba(OH)2?
2. Which element exhibits both +1 and +3 oxidation numbers in its compounds?
3. Which element is obtained commercially by electrolysis?
4. A 0.1 M solution of a certain cation will form a precipitate with 0.1 M solutions of all of these anions; OH¯, CO32¯, SO42¯. Which cation fits this description?
5. Each of these solutions is added to a mixture of aqueous sodium bromide and chloroform,CHCl3. Which one will give a positive test for aqueous bromine when the solutions are vigorously mixed?
6. Oxalic acid dihydrate, H2C2O4 . 2 H2O(s) is often used as a primary standard to standardize sodium hydroxide solutions. Which of these facts are reasons to choose this substance as a primary standard? I. It is diprotic.
7. When FeCl3 is ignited in an atmosphere of pure oxygen,this reaction takes place. 4 FeCl3(s) + 3 O2(g) ---> 2 Fe2O3(s) + 6 Cl2(g) If 3.0 mol of FeCl3 are ignited in the presence of 2.0 mol of O2 gas, how much of which reagent is present in excess and therefore remains unreacted?
8. How many grams of SbF3 are needed to produce a gram of Freon-12, CCl2F2, according to the reation represented by this equation? 3 CCl4 + 2 SbF3 ---> 3 CCl2F2+ 2 SbCl3
9. A self-contained breathing apparatus uses potassium superoxide, KO2, to convert the carbon dioxide and water in exhaled air into oxygen, as shown by the equation. 4 KO2(s) + 2 H2O(g) + 4 CO2(s) ---> 4 KHCO3(s) + 3 O2(g) How many molecules of oxygen gas will be produced from the 0.0468 g of carbon dioxide that is exhaled in a typical breath?
10. Magnetite, Fe3O4, can be converted into metallic iron by heating with carbon monoxide as represented by this equation. Fe3O4(s) + 4 CO(g) ---> 3 Fe(s) + 4 CO 2(g) How many kilograms of Fe3O4 must be processed in this way to obtain 5.00 kg of iron if the process is 85% efficient?
11. What is the molality of an aqueous sucrose solution that is 25.0% sucrose, C12H22O11 by mass?
12. A student finds that 31.26 mL of a 0.165 M solution of barium hydroxide, Ba(OH)2, solution is required to just neutralize 25.00 mL of a citric acid, H3C6H5O7, solution. What is the concentration of the H3C6H5O7 solution?
13. Which Group III element is expected to have physical and chemical properties that are the least similar to the other elements in that family?
14. A pure gas that is 14.4% hydrogen and 85.6% carbon by mass has a density of 2.5 g L¯1 at 0 °C and 1 atm presure. What is the molecular formula of the gas?
15. The vapor pressure of most substances increase with temperature as depicted by this curve. Which way of plotting these data is expected to give a straight line?
16. If 0.10 mL of liquid water are introduced into a 1.0 L flask at 25 °C, how many moles of water are in the vapor phase when equilibrium is established?
17. Sodium chloride, NaCl, usually crystallizes in a face-centered cubic lattice. How many Cl¯ ions are in contact with any single Na+ ion?
18. When solid NH4NO3 is dissolved in water at 25 °C, the temperature of the solution decreases. What is true about the signs of DH and DS for this process?
19. If the equilibrium constant for a reaction is very small (for example, 1 x 10¯20), what would the value of DG be expected to be?
20. Use the bond energies in the table to determine DH for the formation of hydrazine, N2H4, from nitrogen and hydrogen according to this equation: N2(g) + 2 H2(g) ---> N2H4(g)
21. Use the given heats of formation to calculate the enthalpy change for this reaction: B2O3(s) + 3 COCl2(g) ---> 2 BCl3(g) + 3 CO2(g)
22. For which of these processes is the value of DS negative? I. Sugar is dissolved in water.
23. What is the expected value of DG° for this reaction? (E° for the reaction = 0.46 V) Cu(s) + 2 Ag+(aq) ---> Cu2+(aq) + 2 Ag(s)
24. What is the change in internal energy, DE, for a system that does 70 joules of work as it absorbs 45 joules of heat?
25. What are the units of a second-order rate constant?
26. The half life for the radioactive decay of 32P is 14.3 days. How many days would be required for a sample of a radiopharmaceutical containing 32P to decrease to 20% of its initial activity?
27. The rates of many chemical reactions double for a ten degree rise in temperature. Which of these factors does not contribute to this change in rate with increasing temperature?
28. The bromination of acetone that occurs in acid solution is represented by this question. CH3COCH3(aq) + Br2(aq) ---> CH3COCH2Br(aq) + H+(aq) + Br¯(aq) These kinetic data were obtained for given reaction concentrations.
Based on these data, what is the rate equation?
29. What is the initial rate of the reaction (in mol L¯1 sec¯1) depicted by this graph?
30. 2 SO2(g) + O 2(g) <===> 2 SO3(g) Given that the equilibrium constant for the reaction above has a value of 278 at a particular temperature, what is the value of the equilibrium constant for the following reaction at the same temperature? SO3(g) <===> SO2(g) + 1/2 O2(g)
31. Cl2(aq) + H2S(aq) ---> S(s) + 2 H+(aq) + 2 Cl¯(aq) The rate equation for this reaction is: rate = k[Cl2][H2S] Which of these mechanisms is (are) consistent with this rate equation?
32. When a sample of NO2 is placed in a container, this equilibrium is rapidly established. 2 NO2(g) <===> N2O4(g) If this equilibrium mixture is a darker color at high temperatures and at low pressures, which of these statements about the reaction is true?
33. When the acids; H2Se, HBr, and HI, are arranged in order of increasing strength (weakest acid first), which is the correct order?
34. Which statement is true about the relationship between Brønsted-Lowry (B-L) bases and Lewis bases?
35. A solution of 2.0 M formic acid (HCOOH) is 0.95% ionized. What is the Ka of formic acid?
36. If 0.1 mol of a salt is added to 1.0 L of water, which of these salts is expected to produce the most acidic solution?
37. The pKa values for several acid-base indicators are given in the table. Which indicator should be used in the titration of a weak base with a strong acid?
38. Which graph best represents the electrical conductivity behavior that occurs when an aqueous solution of acetic acid, HC2H3O2, is titrated with an aqueous solution of sodium hydroxide, NaOH? 39. When this oxidation-reduction equation is correctly balanced, what is the mole ratio of reducing agent to oxidizing agent? MnO4¯ + Sn2+ + H+ ---> Mn2+ + Sn4+ + H2O
40. The solubility of solid silver chromate, Ag2CrO4, is determined in three solvents.
I. pure water Predict the relative solubility of Ag2CrO4 in the three solvents.
41. Which combination of reactants will produce the greatest voltage based on these standard electrode potentials?
42. The reduction of oxygen gas in 1 M aqueous acid is represented by this equation: (E° = 1.23 V) O2(g) + 4H+(aq) + 4e¯ ---> 2H2O(l) The potential for this reaction at physiological pH, where [H+] = 1 x 10¯7 and the partial pressure of O2 is 1 atm, will be closest to which value?
43. What products are formed during the electrolysis of a concentrated aqueous solution of sodium chloride? I. Cl2(g)
44. A current of 5.00 A is passed through an aqueous solution of chromium(III) nitrate for 30.0 min. How many grams of chromium metal will be deposited at the cathode?
45. The hydrogen line spectrum provides evidence for the
46. What is the number of unpaired electrons in a manganese atom (Z = 25) in its lowest energy states?
47. Ions with the electronic structure 1s2 2s2 2p6 3s2 3p6 would not be present in which aqueous solution?
48. An element with the electron configuration [Xe]4f14 5d7 6s2, is
49. The neutron/proton ratio in an isotope can be increased by the emission of
50. The bonds in ozone, O3, are best represented as
51. Which pair of substances will have the most similar geometry?
52. What hybridization is expected for ClF3?
53. Which bond properties are consistent with one another?
54. Which hydrogen halide has the lowest boiling point?
55. Which substance has a dipole moment?
56. What is the correct name for this compound?
57. How many different structures exist for C2H2Cl2?
58. When ethanol is heated with sulfuric acid, the major product is
59. Many alcohols can be oxidized to aldehydes, and aldehydes can be oxidized to
60. Which statement about polymers is not true?
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