Deck 4: Chemical Reactions
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Deck 4: Chemical Reactions
1
Metals react with oxygen gas to produce oxides with the general formula MxOy. Write a balanced chemical equation for the reaction of titanium with oxygen to yield titanium(IV) oxide.
A) 4 Ti(s) + O2(g) → 2 Ti2O(s)
B) Ti(s) + O2(g) → TiO2(s)
C) 2 Ti(s) + O2(g) → 2 TiO(s)
D) Ti(s) + O(g) → TiO(s)
E) 8 Ti(s) + O2(g) → 2 Ti4O(s)
A) 4 Ti(s) + O2(g) → 2 Ti2O(s)
B) Ti(s) + O2(g) → TiO2(s)
C) 2 Ti(s) + O2(g) → 2 TiO(s)
D) Ti(s) + O(g) → TiO(s)
E) 8 Ti(s) + O2(g) → 2 Ti4O(s)
Ti(s) + O2(g) → TiO2(s)
2
Which one of the statements below is false concerning the following reaction: NH3(g) + H2O NH4+(aq) + OH?(aq)
A) The double arrows indicate that ammonia, NH3, is only very slightly soluble in water.
B) The reaction is reversible.
C) When NH3 is added to H2O, NH4+ and OH? ions are produced in a 1:1 ratio.
D) When solutions of NH4+ and OH- are mixed, some ammonia is produced.
E) Ammonia partially reacts with water.
A) The double arrows indicate that ammonia, NH3, is only very slightly soluble in water.
B) The reaction is reversible.
C) When NH3 is added to H2O, NH4+ and OH? ions are produced in a 1:1 ratio.
D) When solutions of NH4+ and OH- are mixed, some ammonia is produced.
E) Ammonia partially reacts with water.
The double arrows indicate that ammonia, NH3, is only very slightly soluble in water.
3
If an aqueous solution of _____ is added to a mixture of Pb2+ and Ba2+, the lead ion will precipitate, but the barium ion will remain in solution.
A) NaOH
B) Na2SO4
C) K3PO4
D) KCO3
E) NaF
A) NaOH
B) Na2SO4
C) K3PO4
D) KCO3
E) NaF
NaOH
4
Which of the following reactions best describes the dissolution of solid CsOH(s) in water?
A) CsOH(s) + H2O(l) → CsO-(aq) + H3O+(aq)
B) CsOH(s) → CsO-(aq) + H+(aq)
C) CsOH(s) → Cs+(aq) + OH-(aq)
D) CsOH(s) → CsO+(aq) + H-(aq)
E) CsOH(s) → CsOH(aq)
A) CsOH(s) + H2O(l) → CsO-(aq) + H3O+(aq)
B) CsOH(s) → CsO-(aq) + H+(aq)
C) CsOH(s) → Cs+(aq) + OH-(aq)
D) CsOH(s) → CsO+(aq) + H-(aq)
E) CsOH(s) → CsOH(aq)
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5
What is the balanced chemical equation for the complete combustion of benzoic acid, C6H5CO2H, to form carbon dioxide and water?
A) C6H5CO2H(s) → 6 C(s) + CO2(g) + 3 H2(g)
B) C6H5CO2H(s) → 7 CO2(g) + 3 H2O(g)
C) C6H5CO2H(s) + O2(g) → CO2(g) + H2O(g)
D) C6H5CO2H(s) + 8 O2(g) → 7 CO2(g) + 3 H2O(g)
E) 2 C6H5CO2H(s) + 15 O2(g) → 14 CO2(g) + 6 H2O(g)
A) C6H5CO2H(s) → 6 C(s) + CO2(g) + 3 H2(g)
B) C6H5CO2H(s) → 7 CO2(g) + 3 H2O(g)
C) C6H5CO2H(s) + O2(g) → CO2(g) + H2O(g)
D) C6H5CO2H(s) + 8 O2(g) → 7 CO2(g) + 3 H2O(g)
E) 2 C6H5CO2H(s) + 15 O2(g) → 14 CO2(g) + 6 H2O(g)
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6
Which anion will form a precipitate with K+?
A) Cl-
B) SO42-
C) C2H3O2-
D) S2-
E) none
A) Cl-
B) SO42-
C) C2H3O2-
D) S2-
E) none
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7
All of the following compounds are insoluble in water except _____.
A) BaCO3
B) PbF2
C) Fe(OH)3
D) Ni(ClO4)2
E) PbCrO4
A) BaCO3
B) PbF2
C) Fe(OH)3
D) Ni(ClO4)2
E) PbCrO4
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8
Which one of the following equations is properly balanced?
A) Sn + 4HNO3 → SnO2 + 4NO2 + 2H2O
B) 2Na2SO4 + 3Bi(NO3)3 → Bi2(SO4)3 + 9NaNO3
C) CH3CHO + 3O2 → 2CO2 + 2H2O
D) NH4NO3 → 2H2O + N2
E) Na2CO3 + 2H2SO4 → Na2SO4 + 2H2O + CO2
A) Sn + 4HNO3 → SnO2 + 4NO2 + 2H2O
B) 2Na2SO4 + 3Bi(NO3)3 → Bi2(SO4)3 + 9NaNO3
C) CH3CHO + 3O2 → 2CO2 + 2H2O
D) NH4NO3 → 2H2O + N2
E) Na2CO3 + 2H2SO4 → Na2SO4 + 2H2O + CO2
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9
A precipitate is expected when an aqueous solution of sodium iodide is added to an aqueous solution of
A) calcium nitrate.
B) barium hydroxide.
C) lead perchlorate.
D) iron(II) chloride.
E) sodium sulfate.
A) calcium nitrate.
B) barium hydroxide.
C) lead perchlorate.
D) iron(II) chloride.
E) sodium sulfate.
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10
Which of the following compounds is soluble in water?
A) Fe2O3
B) Rb2O
C) BaS
D) Hg2I2
E) ZnO
A) Fe2O3
B) Rb2O
C) BaS
D) Hg2I2
E) ZnO
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11
Which of the following ions is most likely to form an insoluble compound when combined with sulfate ion?
A) Sr2+
B) I-
C) K+
D) Na+
E) S2-
A) Sr2+
B) I-
C) K+
D) Na+
E) S2-
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12
A precipitate will form when aqueous Pb(NO3)2 is added to an aqueous solution of ____.
A) Cu(NO3)2
B) NaI
C) NaCH3CO2
D) Pb(ClO4)2
E) KNO3
A) Cu(NO3)2
B) NaI
C) NaCH3CO2
D) Pb(ClO4)2
E) KNO3
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13
The reaction of chlorine molecule with potassium iodide yields iodine molecule and potassium chloride. Write a balanced chemical equation for this reaction.
A) Cl2(g) + KI(s) → I(s) + KCl2(s)
B) Cl2(g) + 2 KI(s) → I2(s) + 2 KCl(s)
C) Cl2(g) + KI2(s) → I2(s) + KCl2(s)
D) Cl(g) + KI(s) → I(s) + KCl(s)
E) Cl2(g) + 2 K2I(s) → I2(s) + 2 K2Cl(s)
A) Cl2(g) + KI(s) → I(s) + KCl2(s)
B) Cl2(g) + 2 KI(s) → I2(s) + 2 KCl(s)
C) Cl2(g) + KI2(s) → I2(s) + KCl2(s)
D) Cl(g) + KI(s) → I(s) + KCl(s)
E) Cl2(g) + 2 K2I(s) → I2(s) + 2 K2Cl(s)
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14
The products of the complete combustion of octane, C8H18, are carbon dioxide and water. Write a balanced chemical equation for this reaction.
A) C8H18( ) ? 8 C(s) + 9 H2(g)
B) C8H18( ) + 25 O2(g) ? 8 CO2(g) + 9 H2O(g)
C) 2 C8H18( ) + 25 O2(g) ? 16 CO2(g) + 18 H2O(g)
D) C8H18( ) + 16 O2(g) ? 8 CO2(g) + 9 H2(g)
E) 2 C8H18( ) + 17 O2(g) ? 16 CO(g) + 18 H2O(g)
A) C8H18( ) ? 8 C(s) + 9 H2(g)
B) C8H18( ) + 25 O2(g) ? 8 CO2(g) + 9 H2O(g)
C) 2 C8H18( ) + 25 O2(g) ? 16 CO2(g) + 18 H2O(g)
D) C8H18( ) + 16 O2(g) ? 8 CO2(g) + 9 H2(g)
E) 2 C8H18( ) + 17 O2(g) ? 16 CO(g) + 18 H2O(g)
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15
All of the following compounds are soluble in water except ____.
A) CoCO3
B) Cs2CO3
C) (NH4)2CO3
D) K2CO3
E) Na2CO3
A) CoCO3
B) Cs2CO3
C) (NH4)2CO3
D) K2CO3
E) Na2CO3
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16
A precipitate will form when aqueous nickel(II) chloride is added to an aqueous solution of ____.
A) SrI2
B) Cu(NO3)2
C) KOH
D) Na2SO4
E) NaBr
A) SrI2
B) Cu(NO3)2
C) KOH
D) Na2SO4
E) NaBr
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17
Which of the following compounds is soluble in water?
A) Al2S3
B) Cs2O
C) CaS
D) Hg2Cl2
E) NiO
A) Al2S3
B) Cs2O
C) CaS
D) Hg2Cl2
E) NiO
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18
Which of the following equations is not balanced?
A) 2Sb2OS2 + 10O2 → 2Sb2O5 + 4SO3
B) (NH4)2Cr2O7 → N2 + 4H2O + Cr2O3
C) C12H22O11 + 12O2 → 12CO2 + 11H2O
D) 2NaCl + Pb(NO3)2 → PbCl2 + 2NaNO3
E) Fe3O4 + 3CO → 3Fe + 3CO2
A) 2Sb2OS2 + 10O2 → 2Sb2O5 + 4SO3
B) (NH4)2Cr2O7 → N2 + 4H2O + Cr2O3
C) C12H22O11 + 12O2 → 12CO2 + 11H2O
D) 2NaCl + Pb(NO3)2 → PbCl2 + 2NaNO3
E) Fe3O4 + 3CO → 3Fe + 3CO2
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19
Which of the following compounds is insoluble in water?
A) NH4Br
B) KBr
C) FeCl2
D) Hg2Br2
E) LiBr
A) NH4Br
B) KBr
C) FeCl2
D) Hg2Br2
E) LiBr
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20
Which anion will form a precipitate with Ba2+?
A) Cl-
B) SO42-
C) C2H3O2-
D) Br-
E) None of these
A) Cl-
B) SO42-
C) C2H3O2-
D) Br-
E) None of these
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21
Which of the following products will form on mixing aqueous solutions of Cu(NO3)2 and NaOH?
A) Cu(OH)2(s), Na+(aq), and NO3?(aq)
B) Cu(OH)2(s) and NaNO3(s)
C) Cu2(OH)2(aq) and NaNO3(aq)
D) Cu(OH)2(aq) and NaNO3(s)
E) Cu(OH)2(s), N2(g), and H2O( )
A) Cu(OH)2(s), Na+(aq), and NO3?(aq)
B) Cu(OH)2(s) and NaNO3(s)
C) Cu2(OH)2(aq) and NaNO3(aq)
D) Cu(OH)2(aq) and NaNO3(s)
E) Cu(OH)2(s), N2(g), and H2O( )
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22
What is the net ionic equation for the reaction of aqueous sodium hydroxide and aqueous iron(II) chloride?
A) Na+(aq) + OH-(aq) → NaOH(s)
B) Na+(aq) + Cl-(aq) → NaCl(s)
C) Fe2+(aq) + 2 OH-(aq) → Fe(OH)2(s)
D) Fe2+(aq) + OH-(aq) → FeOH+(s)
E) Fe2+(aq) + 2 Cl-(aq) → FeCl2(s)
A) Na+(aq) + OH-(aq) → NaOH(s)
B) Na+(aq) + Cl-(aq) → NaCl(s)
C) Fe2+(aq) + 2 OH-(aq) → Fe(OH)2(s)
D) Fe2+(aq) + OH-(aq) → FeOH+(s)
E) Fe2+(aq) + 2 Cl-(aq) → FeCl2(s)
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23
Which of the following is a weak base in aqueous solution?
A) RbCl
B) KOH
C) NH3
D) HBr
E) Sr(OH)2
A) RbCl
B) KOH
C) NH3
D) HBr
E) Sr(OH)2
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24
Which of the following is a strong acid in aqueous solution?
A) HOCH2CH2OH
B) Ca(OH)2
C) H3PO4
D) NH3
E) HClO4
A) HOCH2CH2OH
B) Ca(OH)2
C) H3PO4
D) NH3
E) HClO4
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25
When solutions of barium iodide and lithium sulfate are mixed, the spectator ions in the resulting precipitation reaction are
A) only SO42-.
B) both Li+ and I-.
C) only I-.
D) only Li+.
E) only Ba2+.
A) only SO42-.
B) both Li+ and I-.
C) only I-.
D) only Li+.
E) only Ba2+.
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26
What is the balanced equation for carbonate ion (CO32-) acting as a Brønsted base in a reaction with water?
A) CO32-(aq) + 3 H2O( ) CO44-(aq) + 2 H3O+(aq)
B) CO32-(aq) + H2O( ) HCO3-(aq) + OH-(aq)
C) CO32-(aq) + H2O( ) CO2(g) + 2 OH-(aq)
D) CO32-(aq) + 2 H2O( ) HCO3-(aq) + H3O+(aq)
E) CO32-(aq) + H2O( ) H2CO42-(aq)
A) CO32-(aq) + 3 H2O( ) CO44-(aq) + 2 H3O+(aq)
B) CO32-(aq) + H2O( ) HCO3-(aq) + OH-(aq)
C) CO32-(aq) + H2O( ) CO2(g) + 2 OH-(aq)
D) CO32-(aq) + 2 H2O( ) HCO3-(aq) + H3O+(aq)
E) CO32-(aq) + H2O( ) H2CO42-(aq)
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27
Which of the following equation best represents the net ionic equation for the reaction between aqueous solutions of barium chloride and cesium sulfate?
A) 2 H+(aq) + 2 Cl-(aq) → 2 HCl(g)
B) Ba2+(aq) + SO42-(aq) → BaSO4(s)
C) Ba2+(aq) + 2 Cl-(aq) + 2 Cs+(aq) + SO42-(aq) → BaSO4(s) + 2 CsCl(aq)
D) BaCl2(aq) + Cs2SO4(aq) → BaSO4(s)+ 2 CsCl(aq)
E) None of these
A) 2 H+(aq) + 2 Cl-(aq) → 2 HCl(g)
B) Ba2+(aq) + SO42-(aq) → BaSO4(s)
C) Ba2+(aq) + 2 Cl-(aq) + 2 Cs+(aq) + SO42-(aq) → BaSO4(s) + 2 CsCl(aq)
D) BaCl2(aq) + Cs2SO4(aq) → BaSO4(s)+ 2 CsCl(aq)
E) None of these
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28
Write a balanced chemical equation for the reaction of aqueous solutions of magnesium chloride and potassium phosphate.
A) MgCl2(aq) + K3PO4(aq) → K3Mg(s) + PO4Cl2(aq)
B) 3 MgCl2(aq) + 2 K3PO4(aq) → 3 K2Mg(s) + 2 PO4Cl3(aq)
C) MgCl(aq) + KPO4(aq) → MgPO4(s) + KCl(aq)
D) MgCl2(aq) + 2 KPO4(aq) → Mg(PO4)2(s) + 2 KCl(aq)
E) 3 MgCl2(aq) + 2 K3PO4(aq) → Mg3(PO4)2(s) + 6 KCl(aq)
A) MgCl2(aq) + K3PO4(aq) → K3Mg(s) + PO4Cl2(aq)
B) 3 MgCl2(aq) + 2 K3PO4(aq) → 3 K2Mg(s) + 2 PO4Cl3(aq)
C) MgCl(aq) + KPO4(aq) → MgPO4(s) + KCl(aq)
D) MgCl2(aq) + 2 KPO4(aq) → Mg(PO4)2(s) + 2 KCl(aq)
E) 3 MgCl2(aq) + 2 K3PO4(aq) → Mg3(PO4)2(s) + 6 KCl(aq)
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29
Write a balanced chemical equation for the reaction of aqueous solutions of sodium sulfide and zinc(II) chloride.
A) Na2S(aq) + ZnCl2(aq) → ZnS(s) + 2 NaCl(aq)
B) Na2S(aq) + ZnCl2(aq) → ZnS(s) + 2 NaCl(s)
C) Na2S(aq) + ZnCl2(aq) → Na2Zn(s) + SCl2(aq)
D) Na2S(aq) + ZnCl2(aq) → Na2Zn(aq) + SCl2(g)
E) None of these
A) Na2S(aq) + ZnCl2(aq) → ZnS(s) + 2 NaCl(aq)
B) Na2S(aq) + ZnCl2(aq) → ZnS(s) + 2 NaCl(s)
C) Na2S(aq) + ZnCl2(aq) → Na2Zn(s) + SCl2(aq)
D) Na2S(aq) + ZnCl2(aq) → Na2Zn(aq) + SCl2(g)
E) None of these
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30
Which of the following compounds is a weak acid in aqueous solution?
A) HCl
B) H3PO4
C) HNO3
D) HClO4
E) H2SO4
A) HCl
B) H3PO4
C) HNO3
D) HClO4
E) H2SO4
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31
Write a balanced equation for the reaction that occurs when hydrogen sulfate ion behaves as a Brønsted-Lowry acid in water.
A) HSO4-(aq) + H2O( ) H2SO4(aq) + H3O+(aq)
B) SO42-(aq) + H2O( ) HSO4-(aq) + OH-(aq)
C) HSO4-(aq) + H2O( ) SO42-(aq) + H3O+(aq)
D) HSO4-(aq) + H2O( ) H2SO4(aq) + OH-(aq)
E) H2SO4(aq) + H2O( ) HSO4-(aq) + H3O+(aq)
A) HSO4-(aq) + H2O( ) H2SO4(aq) + H3O+(aq)
B) SO42-(aq) + H2O( ) HSO4-(aq) + OH-(aq)
C) HSO4-(aq) + H2O( ) SO42-(aq) + H3O+(aq)
D) HSO4-(aq) + H2O( ) H2SO4(aq) + OH-(aq)
E) H2SO4(aq) + H2O( ) HSO4-(aq) + H3O+(aq)
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32
When aqueous solutions of calcium iodide, CaI2, and silver nitrate, AgNO3, are combined, which of the following statements below describes what occurs:
A) A precipitate of Ca(NO3)2 forms
B) A precipitate of AgI forms
C) Both Ca(NO3)2 and AgI precipitate
D) No precipitate will form
A) A precipitate of Ca(NO3)2 forms
B) A precipitate of AgI forms
C) Both Ca(NO3)2 and AgI precipitate
D) No precipitate will form
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33
Nitric acid is the product of the reaction of ____ and H2O.
A) SO3
B) NO2
C) N2
D) NH3
E) N3-
A) SO3
B) NO2
C) N2
D) NH3
E) N3-
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34
Which of the following compounds cannot be depicted as the individual ions on the reactant side in a complete ionic reaction?
A) CsOH
B) HCl
C) Ca(NO3)2
D) CaCO3
E) Ti(NO3)3
A) CsOH
B) HCl
C) Ca(NO3)2
D) CaCO3
E) Ti(NO3)3
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35
What base results when K2O reacts with water?
A) H3O+(aq)
B) KH(aq)
C) O2-(aq)
D) KOH(aq)
E) KO-(aq)
A) H3O+(aq)
B) KH(aq)
C) O2-(aq)
D) KOH(aq)
E) KO-(aq)
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36
What is the net ionic equation for the neutralization of hydrochloric acid with aqueous potassium hydroxide?
A) H+(aq) + OH-(aq) ? H2O( )
B) H+(aq) + Cl-(aq) + K+(aq) + OH-(aq) ? KCl(aq) + H2O( )
C) H+(aq) + Cl-(aq) + K+(aq) + OH-(aq) ? HCl(aq) + KOH(aq)
D) HCl(aq) + K+(aq) + OH-(aq) ? KCl(aq) + H2O( )
E) HCl(aq) + KOH(aq) ? KCl(aq) + H2O( )
A) H+(aq) + OH-(aq) ? H2O( )
B) H+(aq) + Cl-(aq) + K+(aq) + OH-(aq) ? KCl(aq) + H2O( )
C) H+(aq) + Cl-(aq) + K+(aq) + OH-(aq) ? HCl(aq) + KOH(aq)
D) HCl(aq) + K+(aq) + OH-(aq) ? KCl(aq) + H2O( )
E) HCl(aq) + KOH(aq) ? KCl(aq) + H2O( )
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37
If an aqueous solution of ____ is added to a mixture of F- and SO42-, the fluoride ion will precipitate, but the sulfate ion will remain in solution.
A) LiBr
B) HNO3
C) Pb(ClO4)2
D) MgNO3
E) AlCl3
A) LiBr
B) HNO3
C) Pb(ClO4)2
D) MgNO3
E) AlCl3
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38
Which of the following would not be depicted as the individual ions on the reactant side of a complete ionic reaction?
A) LiOH
B) HBr
C) SrCl2
D) CH3COOH
E) CoCl3
A) LiOH
B) HBr
C) SrCl2
D) CH3COOH
E) CoCl3
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39
Which of the following compounds acts as a strong base in an aqueous solution?
A) HOCH2CH2OH
B) Sr(OH)2
C) H3PO4
D) NH3
E) HNO3
A) HOCH2CH2OH
B) Sr(OH)2
C) H3PO4
D) NH3
E) HNO3
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40
Which of the following equations best represents the balanced net ionic equation for the reaction between aqueous solutions of ammonium phosphate and iron(II) nitrate are mixed?
A) 3 Fe2+(aq) + 2 PO43-(aq) → Fe3(PO4)2(s)
B) 2 NH4+(aq) + Fe(NO3)2(aq) → 2 NH4NO3(aq) + Fe2+(aq)
C) 3 Fe2+(aq) + 2 PO43-(aq) → Fe3(PO4)2(aq)
D) 2 (NH4)3PO4(aq) + 3 Fe2+(aq) → Fe3(PO4)2(s) + 6 NH4+(aq)
E) 2 (NH4)3PO4(aq) + 3 Fe(NO3)2(aq) → Fe3(PO4)2(s) + 6 NH4NO3(aq)
A) 3 Fe2+(aq) + 2 PO43-(aq) → Fe3(PO4)2(s)
B) 2 NH4+(aq) + Fe(NO3)2(aq) → 2 NH4NO3(aq) + Fe2+(aq)
C) 3 Fe2+(aq) + 2 PO43-(aq) → Fe3(PO4)2(aq)
D) 2 (NH4)3PO4(aq) + 3 Fe2+(aq) → Fe3(PO4)2(s) + 6 NH4+(aq)
E) 2 (NH4)3PO4(aq) + 3 Fe(NO3)2(aq) → Fe3(PO4)2(s) + 6 NH4NO3(aq)
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41
The net ionic equation for the reaction of calcium carbonate with nitric acid is
A) CaCO3(s) + 2H+(aq) ? Ca2+(aq) + CO2(g) + H2O( ).
B) Ca2+(aq) + CO32-(aq) + 2H+(aq) + 2NO3-(aq) ? Ca(NO3)2(aq) + CO2(g) + H2O( ).
C) CaCO3(s) + 2HNO2(aq) ? Ca2+(aq) + 2NO2-(aq) + CO2(g) + H2O( ).
D) Ca(HCO3)2(s) + 2HNO3(aq) ? Ca2+(aq) + 2NO3-(aq) + CO2(g) + 2H2O( ).
E) CaCO3(s) + 2HNO3(aq) ? Ca2+(aq) + 2NO3-(aq) + CO2(g) + H2O( ).
A) CaCO3(s) + 2H+(aq) ? Ca2+(aq) + CO2(g) + H2O( ).
B) Ca2+(aq) + CO32-(aq) + 2H+(aq) + 2NO3-(aq) ? Ca(NO3)2(aq) + CO2(g) + H2O( ).
C) CaCO3(s) + 2HNO2(aq) ? Ca2+(aq) + 2NO2-(aq) + CO2(g) + H2O( ).
D) Ca(HCO3)2(s) + 2HNO3(aq) ? Ca2+(aq) + 2NO3-(aq) + CO2(g) + 2H2O( ).
E) CaCO3(s) + 2HNO3(aq) ? Ca2+(aq) + 2NO3-(aq) + CO2(g) + H2O( ).
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42
Which of the following is the correct net ionic equation for the reaction between aqueous ammonia and hydrobromic acid?
A) HBr(aq) + NH3(aq) ? NH4Br(aq)
B) H+(aq) + OH-(aq) ? H2O( )
C) HBr(aq) + OH-(aq) ? Br-(aq) + H2O( )
D) H+(aq) + NH3(aq) ? NH4+(aq)
E) H+(aq) + Br-(aq) + NH3(aq) ? NH4+(aq) + Br-(aq)
A) HBr(aq) + NH3(aq) ? NH4Br(aq)
B) H+(aq) + OH-(aq) ? H2O( )
C) HBr(aq) + OH-(aq) ? Br-(aq) + H2O( )
D) H+(aq) + NH3(aq) ? NH4+(aq)
E) H+(aq) + Br-(aq) + NH3(aq) ? NH4+(aq) + Br-(aq)
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43
What are the spectator ions in the reaction between aqueous hydroiodic acid and aqueous sodium hydroxide?
A) Na+ only
B) H+ and OH-
C) Na+ and I-
D) I- only
E) H+, I-, Na+, and OH-
A) Na+ only
B) H+ and OH-
C) Na+ and I-
D) I- only
E) H+, I-, Na+, and OH-
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44
Which species in the reaction below undergoes reduction?
H2O(g) + CO(g) ? H2(g) + CO2(g)
A) H2O
B) CO
C) H2
D) CO2
E) None
H2O(g) + CO(g) ? H2(g) + CO2(g)
A) H2O
B) CO
C) H2
D) CO2
E) None
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45
Hydrocyanic acid, HCN, is a weak acid. Write a net ionic equation for the reaction of aqueous hydrocyanic acid and aqueous sodium hydroxide.
A) HCN(aq) + NaOH(aq) ? Na+(aq) + CN-(aq) + H2O( )
B) HCN(aq) + H2O(aq) ? CN-(aq) + H3O+(aq)
C) H+(aq) + OH-(aq) ? H2O( )
D) HCN(aq) + OH-(aq) ? CN-(aq) + H2O( )
E) H+(aq) + NaOH(aq) ? Na+(aq) + H2O( )
A) HCN(aq) + NaOH(aq) ? Na+(aq) + CN-(aq) + H2O( )
B) HCN(aq) + H2O(aq) ? CN-(aq) + H3O+(aq)
C) H+(aq) + OH-(aq) ? H2O( )
D) HCN(aq) + OH-(aq) ? CN-(aq) + H2O( )
E) H+(aq) + NaOH(aq) ? Na+(aq) + H2O( )
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46
The oxidation number of chlorine is highest in which of the following?
A) HCl
B) Cl2
C) HClO2
D) NaClO3
E) ClO2−
A) HCl
B) Cl2
C) HClO2
D) NaClO3
E) ClO2−
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47
What is the oxidation number of P in NH4(H2PO4)?
A) -2
B) -3
C) 5
D) 1
E) 3
A) -2
B) -3
C) 5
D) 1
E) 3
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48
In the reaction of acetic acid with aqueous lithium hydroxide, what is the spectator ion?
A) OH-(aq)
B) There is no spectator ion.
C) C2H3O2-(aq)
D) Li+(aq)
E) H+(aq)
A) OH-(aq)
B) There is no spectator ion.
C) C2H3O2-(aq)
D) Li+(aq)
E) H+(aq)
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49
Write a balanced net ionic equation for the reaction of aqueous solutions of baking soda (NaHCO3) and acetic acid.
A) HCO3-(aq) + CH3CO2H(aq) ? CH3CO2-(aq) + H2O( ) + CO2(g)
B) 2 NaHCO3(aq) + CH3CO2H(aq) ? 2 Na2CO3(aq) + CH4(aq) + 2H2O( ) + CO2(g)
C) NaHCO3(aq) + H+(aq) ? H2CO3(s) + Na+(aq)
D) HCO3-(aq) + H+(aq) ? H2O( ) + CO2(g)
E) HCO3-(aq) + H+(aq) ? H2CO3(aq)
A) HCO3-(aq) + CH3CO2H(aq) ? CH3CO2-(aq) + H2O( ) + CO2(g)
B) 2 NaHCO3(aq) + CH3CO2H(aq) ? 2 Na2CO3(aq) + CH4(aq) + 2H2O( ) + CO2(g)
C) NaHCO3(aq) + H+(aq) ? H2CO3(s) + Na+(aq)
D) HCO3-(aq) + H+(aq) ? H2O( ) + CO2(g)
E) HCO3-(aq) + H+(aq) ? H2CO3(aq)
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50
Which species is reduced in the reaction below?
I-(aq) + ClO-(aq) ? IO-(aq) + Cl-(aq)
A) I-
B) H2O
C) Cl-
D) IO-
E) ClO-
I-(aq) + ClO-(aq) ? IO-(aq) + Cl-(aq)
A) I-
B) H2O
C) Cl-
D) IO-
E) ClO-
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51
Write a balanced chemical equation for the reaction of aqueous solutions of ammonium sulfate and sodium hydroxide.
A) (NH4)2SO4(aq) + 2 NaOH(aq) ? 2 NH4OH(aq) + SO3(g) + Na2O(aq)
B) (NH3)2SO4(aq) + NaOH(aq) ? 2 NH3(g) + NaOHSO4(aq)
C) (NH3)2SO4(aq) + 2 NaOH(aq) ? 2 NH3(g) + Na2SO4(aq) + 2 OH?(aq)
D) (NH4)2SO4(aq) + 2 NaOH(aq) ? 2 NH4+(g) + Na2SO4(aq) + 2 OH?(aq)
E) (NH4)2SO4(aq) + 2 NaOH(aq) ? 2 NH3(g) + 2 H2O( ) + Na2SO4(aq)
A) (NH4)2SO4(aq) + 2 NaOH(aq) ? 2 NH4OH(aq) + SO3(g) + Na2O(aq)
B) (NH3)2SO4(aq) + NaOH(aq) ? 2 NH3(g) + NaOHSO4(aq)
C) (NH3)2SO4(aq) + 2 NaOH(aq) ? 2 NH3(g) + Na2SO4(aq) + 2 OH?(aq)
D) (NH4)2SO4(aq) + 2 NaOH(aq) ? 2 NH4+(g) + Na2SO4(aq) + 2 OH?(aq)
E) (NH4)2SO4(aq) + 2 NaOH(aq) ? 2 NH3(g) + 2 H2O( ) + Na2SO4(aq)
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52
In the reaction below, which species is oxidized? 3 Rb2S(s) + 8 H+(aq) + 2 NO3-(aq) → 6 Rb+(aq) + 3 S(s) + 2 NO(g) + 4 H2O
A) NO3-
B) Rb2S
C) Rb+
D) NO
E) H+
A) NO3-
B) Rb2S
C) Rb+
D) NO
E) H+
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53
Metal oxides react with water to produce ____.
A) bases
B) hydrogen gas
C) oxygen gas
D) acids
E) hydronium ions
A) bases
B) hydrogen gas
C) oxygen gas
D) acids
E) hydronium ions
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54
Which of the following is/are spectator ions in the reaction between aqueous nitric acid and ammonia?
A) H+
B) NO3-
C) H+ and NH4+
D) NO3- and NH4+
E) H+, NO3-, and NH4+
A) H+
B) NO3-
C) H+ and NH4+
D) NO3- and NH4+
E) H+, NO3-, and NH4+
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55
Which molecule in the reaction below is the oxidizing agent? 2 C2H6(g) + 7 O2(g) → 4 CO2(g) + 6 H2O(g)
A) C2H6
B) O2
C) H2O
D) CO2
E) None
A) C2H6
B) O2
C) H2O
D) CO2
E) None
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56
What is the oxidation number of each atom in sodium hydrogen carbonate, NaHCO3?
A) Na = +1, H = -1, C = +6, and O = -2
B) Na = +1, H = +1, C = +4, and O = -2
C) Na = +1, H = -1, C = +2, and O = -2
D) Na = -1, H = +1, C = 0, and O = -2
E) Na = +1, H = -1, C = 0, and O = 0
A) Na = +1, H = -1, C = +6, and O = -2
B) Na = +1, H = +1, C = +4, and O = -2
C) Na = +1, H = -1, C = +2, and O = -2
D) Na = -1, H = +1, C = 0, and O = -2
E) Na = +1, H = -1, C = 0, and O = 0
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57
Which of the following is a weak electrolyte in aqueous solution?
A) Mg(OH)2
B) NH3
C) LiOH
D) KOH
E) Sr(OH)2
A) Mg(OH)2
B) NH3
C) LiOH
D) KOH
E) Sr(OH)2
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58
What is the oxidation number of Fe in BaFeO4?
A) 2
B) -2
C) 6
D) +3
E) 0
A) 2
B) -2
C) 6
D) +3
E) 0
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59
Which of the following elements generally acts as an oxidizing agent?
A) Br2
B) H2
C) Fe
D) C
E) Li
A) Br2
B) H2
C) Fe
D) C
E) Li
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60
Which of the following compounds will produce a basic solution when dissolved in water?
A) CaO
B) NaHSO4
C) CO2
D) SO2
E) KCl
A) CaO
B) NaHSO4
C) CO2
D) SO2
E) KCl
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61
The net ionic equation for the reaction of barium chloride and sodium sulfate is shown below.
Ba2+(aq) + SO42-(aq) → BaSO4(s)
Chloride and sodium ions are referred to as ________ ions because they are not involved in the reaction.
Ba2+(aq) + SO42-(aq) → BaSO4(s)
Chloride and sodium ions are referred to as ________ ions because they are not involved in the reaction.
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62
________ acid is produced in a larger quantity than any other chemical in the United States. This chemical is used in the production of fertilizers, pigments, alcohol, paper and detergents.
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63
Which of the following compounds is a basic oxide?
A) CO2
B) SO2
C) SO3
D) NO2
E) CaO
A) CO2
B) SO2
C) SO3
D) NO2
E) CaO
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64
Identify a true statement about oxidation numbers.
A) Each atom in an element has an oxidation number of 1.
B) For monoatomic ions, the oxidation number is equal to the charge on the ion.
C) The oxidation number of H is 0 in most of the compounds.
D) The oxidation number of O is +2 in most of the compounds.
E) Fluorine always has an oxidation number of +1 in most of the compounds.
A) Each atom in an element has an oxidation number of 1.
B) For monoatomic ions, the oxidation number is equal to the charge on the ion.
C) The oxidation number of H is 0 in most of the compounds.
D) The oxidation number of O is +2 in most of the compounds.
E) Fluorine always has an oxidation number of +1 in most of the compounds.
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65
Which of the following is not an oxidation?reduction reaction?
A) CaCO3(s) ? CaO(s) + CO2(g)
B) 2 Na(s) + Br2(g) ? 2 NaBr(g)
C) Fe(s) + 2 HCl(aq) ? FeCl2(aq) + H2(g)
D) 2 C(s) + O2(g) ? 2 CO(g)
E) 2 H2O( ) ? 2 H2(g) + O2(g)
A) CaCO3(s) ? CaO(s) + CO2(g)
B) 2 Na(s) + Br2(g) ? 2 NaBr(g)
C) Fe(s) + 2 HCl(aq) ? FeCl2(aq) + H2(g)
D) 2 C(s) + O2(g) ? 2 CO(g)
E) 2 H2O( ) ? 2 H2(g) + O2(g)
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66
_____-oxides produce acids when reacted with water.
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67
If an aqueous sodium hydroxide solution is left in contact with air, the concentration of hydroxide ion gradually decreases. The process can be hastened if a person exhales over a sodium hydroxide solution. Write a balanced chemical equation that describes the process by which the hydroxide ion concentration decreases.
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68
A solution is a homogeneous mixture composed of one or more ____________ dissolved in a solvent.
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69
A(n) _____ agent gains electrons in an oxidation-reduction reaction.
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70
Give the name of an acidic oxide and write a balanced chemical equation for the reaction of the oxide with water.
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71
Ionic and molecular compounds that form ions in aqueous solution are called _____.
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72
Which of the following chemical equations is an acid-base reaction?
A) Ba(OH)2(aq) + K2SO4(aq) → BaSO4(s) + 2 KOH(aq)
B) 3 NaOH(aq) + AlCl3(aq) → Al(OH)3(s) + 3 NaCl(aq)
C) 2 H+(aq) + Zn(s) → H2(g) + Zn2+(aq)
D) 2 HCl(aq) + Pb(NO3)2(aq) → PbCl2(s) + 2 HNO3(aq)
E) H3PO4(aq) + NH3(aq) → NH4+(aq) + H2PO4−(aq)
A) Ba(OH)2(aq) + K2SO4(aq) → BaSO4(s) + 2 KOH(aq)
B) 3 NaOH(aq) + AlCl3(aq) → Al(OH)3(s) + 3 NaCl(aq)
C) 2 H+(aq) + Zn(s) → H2(g) + Zn2+(aq)
D) 2 HCl(aq) + Pb(NO3)2(aq) → PbCl2(s) + 2 HNO3(aq)
E) H3PO4(aq) + NH3(aq) → NH4+(aq) + H2PO4−(aq)
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