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Homework answers / question archive / San Jacinto College - CHEM 1311 1411 Fall 2016 Exam II 1)(c) What is the total mass (amu) of carbon in C12H10O6 ? a)     144

San Jacinto College - CHEM 1311 1411 Fall 2016 Exam II 1)(c) What is the total mass (amu) of carbon in C12H10O6 ? a)     144

Chemistry

San Jacinto College - CHEM 1311

1411 Fall 2016 Exam II

1)(c) What is the total mass (amu) of carbon in C12H10O6 ?

a)     144.12 amu

    1. 60.05 amu
    2. 12.09 amu

d)   342.29 amu

e)   34.89 amu

  1. 13(d) What is the molar mass of CH3COCH3 ?

a)     72.15 g/mol

b)    378.10 g/mol

c)     256.67 g/mol

  1. 58.08 g/mol
  2. 41.77 g/mol
  1. 18(a) Determine the number of moles of 2.12 g of potassium bromide, KBr.

a)     7.7 × 103 mol

b)   6.51 × 105 mol

c)     1.8 x 10-2 mol

d)    2.61 × 105 mol

e)    2.56 × 104 mol

  1. 22(a) A 55-kg woman has 7.5 × 10–3 mol of hemoglobin (molar mass = 64,456 g/mol) in her blood. What is this quantity in grams?

a)     5.6 x 104 g

b)    7.7 × 103 g

c)     4.8 × 102 g

d)  5.6 x 104 g

e)  9.6 x 103 g

  1. 26 Diamond is one form of elemental carbon. An engagement ring contains a diamond weighing 1.25 carats (1 carat = 200 mg). How many atoms are present in the diamond?
  1. 1.25 x 1022 Atoms
  2. 7.27 x 1023 Atoms
  3. 6.65 x 1020 Atoms
  4. 8.77 x 1022 Atoms
  5. 7.22 x 1023 Atoms

 

  1. 47(e) Determine the molarity for 7.0 × 10–3 mol of I2 in 100.0 mL of solution

 

a)     0.196 M

b)   6.23 M

c)     209.4 M

d)    0.070 M

e)   3.84 M

  1. 51(a) Calculate the mass of the solute in 2.00 L of 18.5 M H2SO4, concentrated sulfuric acid.

 

a)     3.703 × 102 g H2SO4

b)    3.334 × 103 g H2SO4

c)     6.988 × 103 g H2SO4

d)   3.63 x 103 g H2SO4

e)   7.783 × 104 g H2SO4

  1. 53 What is the molarity of KMnO4 in a solution of 0.0908 g of KMnO4 in 0.500 L of solution?

 

a)     2.72 × 10-2 M

b)    1.15 x 10-3 M

c)     6.3 × 10-3 g M

d)   3.63 x 10-2 M

e)   7.783 × 10-4 M

  1. 58 What volume of a 1.00-M Fe(NO3)3 solution can be diluted to prepare 1.00 L of a solution with a concentration of 0.250 M?

a)     0.215 L

b)    0.233 L

c)     0.250 L

d)    0.260 L

e)    0.283 L

  1. 60 If 4.12 L of a 0.850 M-H3PO4 solution is be diluted to a volume of 00 L, what is the concentration the resulting solution?

 

a)     0.115 M

b)    0.435 M

c)     0.259 M

d)    0.350 M

e)    0.883 M

  1. Indicate what type, or types, of reaction the following represents:

 

 

2KClO3(s)

 

?

 

2KCl(s) + 3O2 ( g)

 

 

  1. combustion

 

  1. oxidation-reduction
  2. neutralization
  3. precipitation
  4. ionic
  1. 42 (a) Write the balanced equation, then calculate the mass of chlorine, Cl2, required to react with
    1. g of sodium metal, Na, to produce sodium chloride, NaCl.

 

      1. 15.4 g Cl2
      2. 35.2 g Cl2
      3. 56.4 g Cl2
      4. 76.9 g Cl2
      5. 98.7 g Cl2
  1. 44 (a) Write the balanced equation, then determine the mass of Mg required to react with 5.00 g of HCl and produce MgCl2 and H2.

 

  1. 0.56 g Mg
  2. 0.78 g Mg
  3. 1.67 g Mg
  4. 4.58 g Mg
  5. 8.99 g Mg
  1. 46 H2 is produced by the reaction of 118.5 mL of a 0.8775-M solution of H3PO4 according to the

 

following equation: 2Cr + 2H3PO4

 

?

 

3H2   + 2CrPO4 . Determine the mass of H2 produced.

 

 

a)     0.0167 g H2

b)    0.3144 g H2

c)     0.7874 g H2

d)    1.113 g H2

e)    1.563 g H2

  1. 47 Gallium chloride is formed by the reaction of 2.6 L of a 1.44 M solution of HCl according to the

 

following equation: 2Ga + 6HCl

produced.

 

  1. 0.12 x 102 g GaCl3
  2. 1.6 x 102 g GaCl3
  3. 2.2 x 102 g GaCl3
  4. 7.7 x 103 g GaCl3
  5. 5.1 x 103 g GaCl3
 

?

 

2GaCl3 + 3H2 . Determine the mass of gallium chloride

 

 

  1. 50 What mass of silver oxide, Ag2O, is required to produce 25.0 g of silver sulfadiazine, AgC10H9N4SO2, from the reaction of silver oxide and sulfadiazine:

 

 

2C10 H10 N4SO2  + Ag2O

 

?

 

2AgC10 H9 N4SO2   +  H2O

 

 

  1. 2.22 g Ag2O
  2. 3.41 g Ag2O
  3. 5.99 g Ag2O
  4. 8.11 g Ag2O
  5. 9.62 g Ag2O
  1. 52 Automotive air bags inflate when a sample of sodium azide, NaN3, is very rapidly decomposed:

 

 

2NaN3 (s)

 

?

 

2Na(s)

 

+ 3N2 (g)

 

 

What mass of sodium azide is required to produce 2.6 ft3 (73.6 L) of nitrogen gas with a density of 1.25 g/L?

 

  1. 132 g NaN3
  2. 197 g NaN3
  3. 561 g NaN3
  4. 141 g NaN3
  5. 948 g NaN3
  1. 56 What volume of a 0.750 M solution of hydrochloric acid, a solution of HCl, can be prepared from the HCl produced by the reaction of 25.0 g of NaCl with an excess of sulfuric acid:

 

NaCl(s)

 

+  H2SO4 (l)

 

?

 

HCl(g)

 

+ NaHSO4 (s)

 

 

  1. 0.121 L HCl
  2. 0.270 L HCl
  3. 0.570 L HCl
  4. 0.791 L HCl
  5. 0.998 L HCl
  1. 68 In a laboratory experiment, the reaction of 3.0 mol of H2 with 2.0 mol of I2 produced 1.0 mol of HI. Determine the percent yield for this reaction.

 

a)     0.2%

b)   55%

c)     3.0%

d)    78%

e)    25%

 

  1. 90 What volume of a 0.00945-M solution of potassium hydroxide would be required to titrate 50.00 mL of a sample of acid rain with a H2SO4concentration of 1.23 ×10–4 M.

 

H2SO4 (aq) +

 

2KOH(aq)

 

?

 

K2SO4 (aq) +

 

2H2O(l)

 

 

a)     9.88 L

b)   0.694 L

c)     0.0776 L

 

d)   0.0013 L

e)   0.003341 L

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