Deck 20: Chemistry of the Metals

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Question
Write a balanced chemical equation for the chemical reduction of iron(III)oxide that occurs in a blast furnace.

A) Fe2O3(s)+ 3CO(g)→ 2Fe(s)+ 3CO2(g)
B) Fe2O3(s)+ 3CO2(g)→ 2Fe(s)+ 3CO(g)
C) Fe2O3(s)+ 3C(g)→ 2Fe(s)+ 3CO(g)
D) FeO(s)+ CO2(g)→ FeCO3(s)
E) FeO(s)+ CO(g)→ Fe(s)+ CO2(g)
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Question
Aluminum is obtained by

A) the electrolysis of cryolite,Na3AlF6.
B) reduction by a strong inorganic reducing agent,such as thiosulfate ion,S2O32.
C) the reduction of Al2O3 by carbon monoxide in a blast furnace.
D) chemical decomposition of Al2O3 at temperatures greater than 2000°C.
E) electrolysis of a molten mixture of bauxite ore and cryolite,Na3AlF6.
Question
Both sodium metal and chlorine gas are created by the electrolysis of molten sodium chloride.If 1.00 × 102 amperes of current is passed through the cathode for 8.00 hr,what mass of Cl2 will be formed? (F = 96480 C/mol e−).

A) 0.588 g
B) 1.18 g
C) 17.6 g
D) 1.06 × 103 g
E) 2.12 × 102 g
Question
Aluminum is produced by electrolysis of a mixture of bauxite ore (Al2O3)and cryolite (Na3AlF6).The purpose of the cryolite is to

A) increase the current.
B) decrease the potential at which aluminum is reduced.
C) convert oxide ion into water
D) lower the melting point.
E) decrease the pH of the molten solution.
Question
Write a balanced equation for the reduction of Co2O3 by carbon monoxide.

A) Co2O3(s)+ CO(g)→ 2Co(s)+ CO4(g)
B) 2Co2O3(s)+ 2CO(g)→ 2Co2CO3(s)+O2(g)
C) Co2O3(s)+ CO(g)→ Co(s)+ CO2(g)
D) Co2O3(s)+ CO(g)→ Co(s)+ C(g)+ 2O2(g)
E) Co2O3(s)+ 3CO(g)→ 2Co(s)+ 3CO2(g)
Question
Iron that is made in a blast furnace is called pig iron.The pig iron is converted into steel by reducing its carbon content from roughly 4% to under 2% by

A) reduction of the carbon with hydrogen gas.
B) the addition of calcium oxide to form slag.
C) vacuum filtration.
D) electrolysis.
E) reaction with oxygen to form CO2(g).
Question
Who worked out the process for obtaining aluminum from bauxite ore?

A) Michael Faraday
B) Enrico Fermi
C) Charles Hall
D) Linus Pauling
E) Alfred Werner
Question
The main group metals in Group 1 are referred to as the

A) alkali metals.
B) alkaline earth metals.
C) highly reactive metals.
D) transition metals.
E) basic metals.
Question
The main group metals in Group 2 are referred to as the

A) alkali metals.
B) alkaline earth metals.
C) less reactive metals.
D) divalent metals.
E) basic metals.
Question
Write a balanced chemical equation for the reaction of HgS with O2.

A) HgS(s)+ O2(g)→ HgO2(s)+ S(s)
B) HgS(s)+ O2(g)→ Hg(l)+ SO2(g)
C) HgS(s)+ O2(g)→ HgSO2(s)
D) HgS(s)+ 2O2(g)→ HgSO4(s)
E) 2HgS(s)+ O2(g)→ HgO(s)+ 2S(s)
Question
Copper can be obtained from copper sulfide by heating in the presence of oxygen.This process is called

A) roasting.
B) oxidation.
C) smelting.
D) steaming.
E) alloying.
Question
The roasting of Cu2S(s)produces Cu(s)and SO2(g).What mass of sulfur dioxide is produced by the roasting of 1.00 × 103 kg Cu2S(s)? Cu2S(s)+ O2(g)→ 2Cu(s)+ SO2(g)

A) 201
B) 402 kg
C) 798 kg
D) 804 kg
E) 2.48 × 103 kg
Question
At temperatures greater than 800°C,limestone decomposes according to which balanced chemical equation?

A) CaO(s)→ Ca(s)+ O(g)
B) 2CaO(s)→ 2Ca(s)+ O2(g)
C) CaCO3(s)→ CaO(s)+ CO2(g)
D) CaCO3(s)→ CaO2(s)+ CO(g)
E) CaCO2(g)→ Ca(s)+ CO2(g)
Question
Separation of gold from ore is currently accomplished by using which ligand to make a soluble coordination compound from Au+1?

A) Chloride ion
B) Cyanide ion
C) Ammonia
D) Perchlorate ion
E) Ethylenediamine
Question
The iron produced in a blast furnace contains significant impurities of carbon,silicon,manganese,and phosphorus.These impurities are removed in a ________.

A) basic oxygen furnace
B) distillation column
C) mass spectrometer
D) electrolytic cell
E) centrifuge
Question
What is a useful by-product of the production of sodium metal?

A) Hydrogen
B) Magnesium
C) Chlorine
D) Helium
E) Calcium
Question
All of the following metals may be found in nature as free elements EXCEPT ____.

A) Ir
B) Au
C) Pt
D) Ti
E) Rh
Question
Slag is a glassy material that forms when calcium oxide reacts with impurities (mostly silicon dioxide)in a blast furnace.Write the balanced chemical equation for the reaction.

A) CaCO3(s)+ Si(s)→ CaSiO3(l)
B) CaCO3(s)+ SiO2(s)→ CaSiO5(l)
C) CaO(s)+ SiO2(s)→ CaSiO(l)+ O2(g)
D) CaO(s)+ SiO2(s)→ CaSiO3(l)
E) CaO(s)+ SiO(s)→ CaCO2(l)
Question
What is the most common chemical reducing agent in metallurgical processes?

A) Thiosulfate ion,S2O32
B) Oxygen,O2
C) Sodium metal
D) Carbon;in the form of carbon monoxide
E) Carbon;in the form of carbon dioxide
Question
Write a balanced equation for the reduction of manganese(IV)oxide ore by carbon monoxide.

A) MnO(s)+ CO(g)→ Mn(s)+ CO2(g)
B) MnO(s)+ 2CO(g)→ Mn(s)+ 2CO2(g)
C) Mn2O(s)+ CO(g)→ Mn(s)+ CO2(g)
D) MnO2(s)+ 2CO(g)→ Mn(s)+ 2CO2(g)
E) MnO2(s)+ 2CO(g)→ Mn(s)+ 2C(s)+ O2(g)
Question
Historically,miners separated gold by taking advantage of its

A) high density.
B) low melting point.
C) high solubility in water.
D) radioactivity.
E) amphoteric nature.
Question
Which of the following metals will react most violently with water?

A) Li
B) Mg
C) K
D) Ca
E) Cr
Question
Write a balanced equation for the reaction of barium and nitrogen gas.

A) Ba(s)+ N2(g)→ BaN2(s)
B) 2Ba(s)+ N2(g)→ 2BaN(s)
C) 2Ba(s)+ N2(g)→ 2BaN(s)..
D) 3Ba(s)+ N2(g)→ Ba3N2(s)
E) 4Ba(s)+ 3N2(g)→ 2Ba2N3(s)
Question
One product of the reaction of sodium and water is sodium hydroxide.What mass of sodium is needed to make 2.0 L of 0.075 M NaOH(aq)?

A) 0.26 g
B) 3.4 g
C) 6.0 g
D) 6.8 g
E) 12 g
Question
Write a balanced equation for the oxidation of gold by aqua regia.

A) Au(s)+ 4H+(aq)+ 4Cl−(aq)+ NO3−(aq)→ AuCl4−(aq)+ NO(g)+ 2H2O(l)
B) Au(s)+ 4H+(aq)+ NO3−(aq)→ Au3+(aq)+ NO(g)+ 4H2O(l)
C) 2Au(s)+ 6H2O(l)→ 2Au(OH)3(s)+ 3H2(g)
D) 2Au(s)+ 6H+(aq)+ 6NO3−(aq)→ 2Au3+(aq)+ NO3−(aq)+ 3H2(g)
E) 4Au(s)+ 8CN−(aq)+ O2(g)+ 2H2O(l)→ 4Au(CN)2−(aq)+ 4OH−(aq)
Question
What is the percent composition of chalcopyrite,CuFeS2?

A) 25.0% Cu,25.0% Fe,50.0% S
B) 33.3% Cu,33.3% Fe,33.3% S
C) 34.6% Cu,30.4% Fe,35.0% S
D) 41.2% Cu,17.3% Fe,41.5% S
E) 42.0% Cu,36.9% Fe,21.1% S
Question
Write a balanced equation for the reaction of magnesium and nitrogen that occurs upon heating.

A) Mg(s)+ N2(g)→ MgN2(s)
B) 2Mg(s)+ N2(g)→ 2MgN(s)
C) 4Mg(s)+ N2(g)→ 2Mg2N(s)
D) 4Mg(s)+ 3N2(g)→ 2Mg2N3(s)
E) 3Mg(s)+ N2(g)→ Mg3N2(s)
Question
Write a balanced equation for the oxidation of copper metal by nitric acid.

A) Cu(s)+ 6H+(aq)+ NO3−(aq)→ Cu2+(aq)+ NH3(aq)+ 3H2O(l)
B) Cu(s)+ 12H+(aq)+ 2NO3−(aq)→ Cu2+(aq)+ N2(g)+ 6H2O(l)
C) 3Cu(s)+ 8H+(aq)+ 2NO3−(aq)→ 3Cu2+(aq)+ 2NO(g)+ 4H2O(l)
D) 4Cu(s)+ 6H+(aq)+ NO3−(aq)→ 4Cu2+(aq)+ NH3(aq)+ 3H2O(l)
E) 5Cu(s)+ 12H+(aq)+ 2NO3−(aq)→ 5Cu2+(aq)+ N2(g)+ 6H2O(l)
Question
Potassium superoxide is used in self-contained breathing devices.Its function is to

A) remove nitrogen from exhaled air.
B) absorb smoke or other hazardous vapors.
C) generate oxygen only.
D) remove exhaled carbon dioxide only.
E) both generate oxygen and remove exhaled carbon dioxide.
Question
Even in basic solution,MnO4− can oxidize water.One product is manganese(IV)oxide.Write a balanced chemical equation for the reaction.

A) MnO4−(aq)+ H2O(l)→ MnO2(s)+ H2(g)+ OH−(aq)
B) MnO4−(aq)+ 6H2O(l)→ MnO2(s)+ 2H2(g)+ 8OH−(aq)
C) 2MnO4−(aq)+ 2H2O(l)→ 2Mn2+(aq)+ 3O2(g)+ 4OH−(aq)
D) 4MnO4−(aq)+ 2H2O(l)→ 4MnO2(s)+ 3O2(g)+ 4OH−(aq)
E) 4MnO4−(aq)+ H2O(l)→ 4MnO(s)+ O2(g)+ 2OH−(aq)
Question
Given the half-reactions and Ered \mathrm{E}_{\mathrm{red}}^{\circ} values below,determine which species is the best reducing agent.
MnO4(aq)+8H+(aq)+5eMn2+(aq)+4H2O(l)Ered=+1.512 V4H+(aq)+NO3(aq)+3eNO(g)+2H2O(l)Ered=+0.964 VFe3+(aq)+eFe2+(s)Ered=+0.771 V2H+(aq)+2eH2(g)Ered =0.000 V\begin{array}{ll}\mathrm{MnO}_{4}-(a q)+8 \mathrm{H}^{+}(a q)+5 e^{-} \rightarrow \mathrm{Mn}^{2+}(a q)+4 \mathrm{H}_{2} \mathrm{O}(l) & \mathrm{E}_{\mathrm{red}=+1.512 \mathrm{~V}}^{\circ} \\4 \mathrm{H}^{+}(a q)+\mathrm{NO}_{3}-(a q)+3 e^{-} \rightarrow \mathrm{NO}(g)+2 \mathrm{H}_{2} \mathrm{O}(l) & \mathrm{E}_{\mathrm{red}=+0.964 \mathrm{~V}}^{\circ} \\\mathrm{Fe}^{3+}(a q)+e-\rightarrow \mathrm{Fe}^{2+}(s) & \mathrm{E}_{\mathrm{red}}^{\circ}=+0.771 \mathrm{~V} \\2 \mathrm{H}^{+}(a q)+2 e^{-} \rightarrow \mathrm{H}_{2}(g) & \mathrm{E}_{\text {red }}^{\circ}=0.000 \mathrm{~V}\end{array}

A) H+
B) H2
C) Fe2+
D) NO3?
E) MnO4?
Question
Write the balanced half-reaction for the reduction of permanganate ion to Mn2+ in an acidic solution.

A) MnO4−(aq)+ 8H+(aq)→ Mn2+(aq)+ 4H2O(l)
B) MnO4−(aq)+ 5e− → Mn2+(aq)+ 2O2(g)
C) MnO4−(aq)+ 4H+(aq)+ 3e− → Mn2+(aq)+ 4OH−(aq)
D) MnO4−(aq)+ 4H+(aq)+ 5e− → Mn2+(aq)+ 4OH−(aq)
E) MnO4−(aq)+ 8H+(aq)+ 5e− → Mn2+(aq)+ 4H2O(l)
Question
Write a balanced equation for the reaction of Na and O2 to form sodium peroxide.

A) 4Na(s)+ O2(g)→ 2Na2O(s)
B) Na(s)+ O2(g)→ NaO2(s)
C) 2Na(s)+ O2(g)→ Na2O2(s)
D) 2Na(s)+ O2(g)→ 2NaO(s)
E) 4Na(s)+ 3O2(g)→ 2Na2O3(s)
Question
Write a balanced equation for the reaction of calcium hydride with water.

A) CaH2(s)+ H2O(l)→ CaOH2(s)+ H2(g)
B) CaH2(s)+ H2O(l)→ CaO(s)+ 2H2(g)
C) CaH2(s)+ H2O(l)→ Ca(s)+ 2H2(g)+ H2O(l)
D) CaH2(s)+ 2H2O(l)→ Ca(s)+ 3H2(g)+ O2(l)
E) CaH2(s)+ 2H2O(l)→ Ca2+(aq)+ 2OH−(aq)+ 2H2(g)
Question
In an aqueous solution,Cu+ undergoes a reaction to form Cu(s)and Cu2+.This reaction is an example of

A) reduction.
B) oxidation.
C) disproportionation.
D) precipitation.
E) amphoterism.
Question
The principal product of the reaction of potassium and oxygen is not K2O.The product is named ____ and has the formula ____.

A) dipotassium trioxide,K2O3
B) potassium monoxide,KO
C) potassium superoxide,KO2
D) potassium peroxide,K2O2
E) potassium trioxide,KO3
Question
Write a balanced chemical equation for the reaction of potassium and water.

A) K(s)+ H2O(l)→ KO(s)+ H2(g)
B) 2K(s)+ 2H2O(l)→ 2KOH(aq)+ H2(g)
C) 2K(s)+ 2H2O(l)→ K2O2(s)+ 2H2(g)
D) 2K(s)+ H2O(l)→ K2O(s)+ H2(g)
E) 4K(s)+ 2H2O(l)→ 4KH(s)+ O2(g)
Question
Strontium oxide reacts with water.Write a balanced equation for this reaction.

A) SrO(s)+ H2O(l)→ Sr2+(aq)+ O2(aq)+ H2O(l)
B) SrO(s)+ H2O(l)→ Sr2+(aq)+ 2OH−(aq)
C) SrO(s)+ H2O(l)→ SrH2(aq)+ O2(g)
D) SrO(s)+ H2O(l)→ Sr2+(aq)+ 2H−(aq)+ O2(g)
E) SrO(s)+ H2O(l)→ Sr(s)+ H2O2(aq)
Question
Write a balanced equation for the reaction of sodium and bromine.

A) Na(s)+ Br−(l)→ NaBr(s)
B) Na(s)+ Br(l)→ NaBr(s)+ Br−(aq)
C) Na(s)+ Br2(l)→ NaBr2(s)
D) 2Na(s)+ Br2(l)→ 2NaBr(s)
E) 4Na(s))+ Br2(l)→ 2Na2Br(s)
Question
Given the half-reactions and Ered \mathrm{E}_{\mathrm{red}}^{\circ} values in the table below, determine which species is the best oxidizing agent.
MnO4(aq)+8H+(aq)+5eMn2+(aq)+4H2O(l)Ered=+1.512 V4H+(aq)+NO3(aq)+3eNO(g)+2H2O(l)Ered=+0.964 VFe3+(aq)+eFe2+(s)Ered=+0.771 V2H+(aq)+2eH2(g)Ered =0.000 V\begin{array}{ll}\mathrm{MnO}_{4}-(a q)+8 \mathrm{H}^{+}(a q)+5 e^{-} \rightarrow \mathrm{Mn}^{2+}(a q)+4 \mathrm{H}_{2} \mathrm{O}(l) & \mathrm{E}_{\mathrm{red}=+1.512 \mathrm{~V}}^{\circ} \\4 \mathrm{H}^{+}(a q)+\mathrm{NO}_{3}-(a q)+3 e^{-} \rightarrow \mathrm{NO}(g)+2 \mathrm{H}_{2} \mathrm{O}(l) & \mathrm{E}_{\mathrm{red}=+0.964 \mathrm{~V}}^{\circ} \\\mathrm{Fe}^{3+}(a q)+e-\rightarrow \mathrm{Fe}^{2+}(s) & \mathrm{E}_{\mathrm{red}}^{\circ}=+0.771 \mathrm{~V} \\2 \mathrm{H}^{+}(a q)+2 e^{-} \rightarrow \mathrm{H}_{2}(g) & \mathrm{E}_{\text {red }}^{\circ}=0.000 \mathrm{~V}\end{array}

A) H+
B) Fe2+
C) Fe3+
D) NO3?
E) MnO4?
Question
Ammonium dichromate, (NH4)2Cr2O7 decomposes in a reaction that resembles the eruption of a volcano.Write a balanced chemical equation for the reaction.

A) (NH4)2Cr2O7(s)→ N2(g)+ 4H2O(g)+ Cr2O3(s)
B) (NH4)2Cr2O7(s)→ 2NH3(g)+ H2Cr2O7(s)
C) (NH4)2Cr2O7(s)→ 2NH3(g)+ 4H2O(g)+ 2CrO3
D) (NH4)2Cr2O7(s)→ 2NH4+(g)+ Cr2O72(g)
E) (NH4)2Cr2O7(s)→ 2NH3(g)+ 3H2(g)+ H2O(g)+ 2CrO3(s)
Question
Potassium superoxide is used to generate oxygen in confined places,such as submarines and spacecraft. 4KO2(s)+ 2CO2(g)→ K2CO3(s)+ 3O2(g)
What mass of oxygen will be produced for each 1.0 g KO2 consumed?

A) 0.23 g
B) 0.34 g
C) 0.45 g
D) 0.60 g
E) 1.0 g
Question
Which of the following cations is not essential to human nutrition?

A) Hg2+
B) Zn2+
C) K+
D) Ca2+
E) Fe2+
Question
Which of the following cations has the highest concentration in the human body?

A) Na+
B) Zn2+
C) K+
D) Ca2+
E) Fe2+
Question
What group of elements tend to form colored salts?

A) Group 1 metals
B) Group 2 metals
C) Transition metals
D) All of the above
E) None of the above
Question
Which metal cation is a component of over 70 enzymes?

A) Al3+
B) Ca2+
C) Co3+
D) Fe2+
E) Zn2+
Question
Sodium azide is used in air bags for automobiles.The gas produced from the decomposition of sodium azide is nitrogen. 2NaN3(s)→ 2Na(s)+ 3N2(g)
What mass of NaN3 is required to inflate a bag with a volume of 45 L at a pressure of 1.0 atm and a temperature of 305 K? The gas law constant is 0.0821 L⋅atm/mol⋅K and the molar mass of NaN3 is 65.0 g/mol.

A) 2.8 × 10−2 g
B) 1.2 × 10−1 g
C) 7.8 × 101 g
D) 1.2 × 102 g
E) 1.8 × 102 g
Question
Ilmenite,an ore used in the production of metallic titanium,is composed of 36.8% iron,31.6% titanium,and 31.6% oxygen.What is the empirical (simplest)formula for ilmenite?

A) FeTiO
B) FeTiO2
C) FeTiO3
D) Fe2TiO4
E) Fe3Ti2O6
Question
Which of the following cations is a component of vitamin B12?

A) Li+
B) Mg2+
C) Ca2+
D) Co2+
E) Hg2+
Question
Which of the following is the principal cation within cell fluid?

A) Na+
B) Mg2+
C) K+
D) Ca2+
E) Fe2+
Question
Which of the following cations is not a trace species in the human body?

A) Be2+
B) Cr3+
C) Co2+
D) Zn2+
E) Cu2+
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Deck 20: Chemistry of the Metals
1
Write a balanced chemical equation for the chemical reduction of iron(III)oxide that occurs in a blast furnace.

A) Fe2O3(s)+ 3CO(g)→ 2Fe(s)+ 3CO2(g)
B) Fe2O3(s)+ 3CO2(g)→ 2Fe(s)+ 3CO(g)
C) Fe2O3(s)+ 3C(g)→ 2Fe(s)+ 3CO(g)
D) FeO(s)+ CO2(g)→ FeCO3(s)
E) FeO(s)+ CO(g)→ Fe(s)+ CO2(g)
Fe2O3(s)+ 3CO(g)→ 2Fe(s)+ 3CO2(g)
2
Aluminum is obtained by

A) the electrolysis of cryolite,Na3AlF6.
B) reduction by a strong inorganic reducing agent,such as thiosulfate ion,S2O32.
C) the reduction of Al2O3 by carbon monoxide in a blast furnace.
D) chemical decomposition of Al2O3 at temperatures greater than 2000°C.
E) electrolysis of a molten mixture of bauxite ore and cryolite,Na3AlF6.
electrolysis of a molten mixture of bauxite ore and cryolite,Na3AlF6.
3
Both sodium metal and chlorine gas are created by the electrolysis of molten sodium chloride.If 1.00 × 102 amperes of current is passed through the cathode for 8.00 hr,what mass of Cl2 will be formed? (F = 96480 C/mol e−).

A) 0.588 g
B) 1.18 g
C) 17.6 g
D) 1.06 × 103 g
E) 2.12 × 102 g
1.06 × 103 g
4
Aluminum is produced by electrolysis of a mixture of bauxite ore (Al2O3)and cryolite (Na3AlF6).The purpose of the cryolite is to

A) increase the current.
B) decrease the potential at which aluminum is reduced.
C) convert oxide ion into water
D) lower the melting point.
E) decrease the pH of the molten solution.
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5
Write a balanced equation for the reduction of Co2O3 by carbon monoxide.

A) Co2O3(s)+ CO(g)→ 2Co(s)+ CO4(g)
B) 2Co2O3(s)+ 2CO(g)→ 2Co2CO3(s)+O2(g)
C) Co2O3(s)+ CO(g)→ Co(s)+ CO2(g)
D) Co2O3(s)+ CO(g)→ Co(s)+ C(g)+ 2O2(g)
E) Co2O3(s)+ 3CO(g)→ 2Co(s)+ 3CO2(g)
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6
Iron that is made in a blast furnace is called pig iron.The pig iron is converted into steel by reducing its carbon content from roughly 4% to under 2% by

A) reduction of the carbon with hydrogen gas.
B) the addition of calcium oxide to form slag.
C) vacuum filtration.
D) electrolysis.
E) reaction with oxygen to form CO2(g).
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7
Who worked out the process for obtaining aluminum from bauxite ore?

A) Michael Faraday
B) Enrico Fermi
C) Charles Hall
D) Linus Pauling
E) Alfred Werner
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8
The main group metals in Group 1 are referred to as the

A) alkali metals.
B) alkaline earth metals.
C) highly reactive metals.
D) transition metals.
E) basic metals.
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9
The main group metals in Group 2 are referred to as the

A) alkali metals.
B) alkaline earth metals.
C) less reactive metals.
D) divalent metals.
E) basic metals.
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10
Write a balanced chemical equation for the reaction of HgS with O2.

A) HgS(s)+ O2(g)→ HgO2(s)+ S(s)
B) HgS(s)+ O2(g)→ Hg(l)+ SO2(g)
C) HgS(s)+ O2(g)→ HgSO2(s)
D) HgS(s)+ 2O2(g)→ HgSO4(s)
E) 2HgS(s)+ O2(g)→ HgO(s)+ 2S(s)
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11
Copper can be obtained from copper sulfide by heating in the presence of oxygen.This process is called

A) roasting.
B) oxidation.
C) smelting.
D) steaming.
E) alloying.
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12
The roasting of Cu2S(s)produces Cu(s)and SO2(g).What mass of sulfur dioxide is produced by the roasting of 1.00 × 103 kg Cu2S(s)? Cu2S(s)+ O2(g)→ 2Cu(s)+ SO2(g)

A) 201
B) 402 kg
C) 798 kg
D) 804 kg
E) 2.48 × 103 kg
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13
At temperatures greater than 800°C,limestone decomposes according to which balanced chemical equation?

A) CaO(s)→ Ca(s)+ O(g)
B) 2CaO(s)→ 2Ca(s)+ O2(g)
C) CaCO3(s)→ CaO(s)+ CO2(g)
D) CaCO3(s)→ CaO2(s)+ CO(g)
E) CaCO2(g)→ Ca(s)+ CO2(g)
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14
Separation of gold from ore is currently accomplished by using which ligand to make a soluble coordination compound from Au+1?

A) Chloride ion
B) Cyanide ion
C) Ammonia
D) Perchlorate ion
E) Ethylenediamine
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15
The iron produced in a blast furnace contains significant impurities of carbon,silicon,manganese,and phosphorus.These impurities are removed in a ________.

A) basic oxygen furnace
B) distillation column
C) mass spectrometer
D) electrolytic cell
E) centrifuge
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16
What is a useful by-product of the production of sodium metal?

A) Hydrogen
B) Magnesium
C) Chlorine
D) Helium
E) Calcium
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17
All of the following metals may be found in nature as free elements EXCEPT ____.

A) Ir
B) Au
C) Pt
D) Ti
E) Rh
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18
Slag is a glassy material that forms when calcium oxide reacts with impurities (mostly silicon dioxide)in a blast furnace.Write the balanced chemical equation for the reaction.

A) CaCO3(s)+ Si(s)→ CaSiO3(l)
B) CaCO3(s)+ SiO2(s)→ CaSiO5(l)
C) CaO(s)+ SiO2(s)→ CaSiO(l)+ O2(g)
D) CaO(s)+ SiO2(s)→ CaSiO3(l)
E) CaO(s)+ SiO(s)→ CaCO2(l)
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19
What is the most common chemical reducing agent in metallurgical processes?

A) Thiosulfate ion,S2O32
B) Oxygen,O2
C) Sodium metal
D) Carbon;in the form of carbon monoxide
E) Carbon;in the form of carbon dioxide
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20
Write a balanced equation for the reduction of manganese(IV)oxide ore by carbon monoxide.

A) MnO(s)+ CO(g)→ Mn(s)+ CO2(g)
B) MnO(s)+ 2CO(g)→ Mn(s)+ 2CO2(g)
C) Mn2O(s)+ CO(g)→ Mn(s)+ CO2(g)
D) MnO2(s)+ 2CO(g)→ Mn(s)+ 2CO2(g)
E) MnO2(s)+ 2CO(g)→ Mn(s)+ 2C(s)+ O2(g)
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21
Historically,miners separated gold by taking advantage of its

A) high density.
B) low melting point.
C) high solubility in water.
D) radioactivity.
E) amphoteric nature.
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22
Which of the following metals will react most violently with water?

A) Li
B) Mg
C) K
D) Ca
E) Cr
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23
Write a balanced equation for the reaction of barium and nitrogen gas.

A) Ba(s)+ N2(g)→ BaN2(s)
B) 2Ba(s)+ N2(g)→ 2BaN(s)
C) 2Ba(s)+ N2(g)→ 2BaN(s)..
D) 3Ba(s)+ N2(g)→ Ba3N2(s)
E) 4Ba(s)+ 3N2(g)→ 2Ba2N3(s)
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24
One product of the reaction of sodium and water is sodium hydroxide.What mass of sodium is needed to make 2.0 L of 0.075 M NaOH(aq)?

A) 0.26 g
B) 3.4 g
C) 6.0 g
D) 6.8 g
E) 12 g
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25
Write a balanced equation for the oxidation of gold by aqua regia.

A) Au(s)+ 4H+(aq)+ 4Cl−(aq)+ NO3−(aq)→ AuCl4−(aq)+ NO(g)+ 2H2O(l)
B) Au(s)+ 4H+(aq)+ NO3−(aq)→ Au3+(aq)+ NO(g)+ 4H2O(l)
C) 2Au(s)+ 6H2O(l)→ 2Au(OH)3(s)+ 3H2(g)
D) 2Au(s)+ 6H+(aq)+ 6NO3−(aq)→ 2Au3+(aq)+ NO3−(aq)+ 3H2(g)
E) 4Au(s)+ 8CN−(aq)+ O2(g)+ 2H2O(l)→ 4Au(CN)2−(aq)+ 4OH−(aq)
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26
What is the percent composition of chalcopyrite,CuFeS2?

A) 25.0% Cu,25.0% Fe,50.0% S
B) 33.3% Cu,33.3% Fe,33.3% S
C) 34.6% Cu,30.4% Fe,35.0% S
D) 41.2% Cu,17.3% Fe,41.5% S
E) 42.0% Cu,36.9% Fe,21.1% S
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27
Write a balanced equation for the reaction of magnesium and nitrogen that occurs upon heating.

A) Mg(s)+ N2(g)→ MgN2(s)
B) 2Mg(s)+ N2(g)→ 2MgN(s)
C) 4Mg(s)+ N2(g)→ 2Mg2N(s)
D) 4Mg(s)+ 3N2(g)→ 2Mg2N3(s)
E) 3Mg(s)+ N2(g)→ Mg3N2(s)
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28
Write a balanced equation for the oxidation of copper metal by nitric acid.

A) Cu(s)+ 6H+(aq)+ NO3−(aq)→ Cu2+(aq)+ NH3(aq)+ 3H2O(l)
B) Cu(s)+ 12H+(aq)+ 2NO3−(aq)→ Cu2+(aq)+ N2(g)+ 6H2O(l)
C) 3Cu(s)+ 8H+(aq)+ 2NO3−(aq)→ 3Cu2+(aq)+ 2NO(g)+ 4H2O(l)
D) 4Cu(s)+ 6H+(aq)+ NO3−(aq)→ 4Cu2+(aq)+ NH3(aq)+ 3H2O(l)
E) 5Cu(s)+ 12H+(aq)+ 2NO3−(aq)→ 5Cu2+(aq)+ N2(g)+ 6H2O(l)
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29
Potassium superoxide is used in self-contained breathing devices.Its function is to

A) remove nitrogen from exhaled air.
B) absorb smoke or other hazardous vapors.
C) generate oxygen only.
D) remove exhaled carbon dioxide only.
E) both generate oxygen and remove exhaled carbon dioxide.
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30
Even in basic solution,MnO4− can oxidize water.One product is manganese(IV)oxide.Write a balanced chemical equation for the reaction.

A) MnO4−(aq)+ H2O(l)→ MnO2(s)+ H2(g)+ OH−(aq)
B) MnO4−(aq)+ 6H2O(l)→ MnO2(s)+ 2H2(g)+ 8OH−(aq)
C) 2MnO4−(aq)+ 2H2O(l)→ 2Mn2+(aq)+ 3O2(g)+ 4OH−(aq)
D) 4MnO4−(aq)+ 2H2O(l)→ 4MnO2(s)+ 3O2(g)+ 4OH−(aq)
E) 4MnO4−(aq)+ H2O(l)→ 4MnO(s)+ O2(g)+ 2OH−(aq)
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31
Given the half-reactions and Ered \mathrm{E}_{\mathrm{red}}^{\circ} values below,determine which species is the best reducing agent.
MnO4(aq)+8H+(aq)+5eMn2+(aq)+4H2O(l)Ered=+1.512 V4H+(aq)+NO3(aq)+3eNO(g)+2H2O(l)Ered=+0.964 VFe3+(aq)+eFe2+(s)Ered=+0.771 V2H+(aq)+2eH2(g)Ered =0.000 V\begin{array}{ll}\mathrm{MnO}_{4}-(a q)+8 \mathrm{H}^{+}(a q)+5 e^{-} \rightarrow \mathrm{Mn}^{2+}(a q)+4 \mathrm{H}_{2} \mathrm{O}(l) & \mathrm{E}_{\mathrm{red}=+1.512 \mathrm{~V}}^{\circ} \\4 \mathrm{H}^{+}(a q)+\mathrm{NO}_{3}-(a q)+3 e^{-} \rightarrow \mathrm{NO}(g)+2 \mathrm{H}_{2} \mathrm{O}(l) & \mathrm{E}_{\mathrm{red}=+0.964 \mathrm{~V}}^{\circ} \\\mathrm{Fe}^{3+}(a q)+e-\rightarrow \mathrm{Fe}^{2+}(s) & \mathrm{E}_{\mathrm{red}}^{\circ}=+0.771 \mathrm{~V} \\2 \mathrm{H}^{+}(a q)+2 e^{-} \rightarrow \mathrm{H}_{2}(g) & \mathrm{E}_{\text {red }}^{\circ}=0.000 \mathrm{~V}\end{array}

A) H+
B) H2
C) Fe2+
D) NO3?
E) MnO4?
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32
Write the balanced half-reaction for the reduction of permanganate ion to Mn2+ in an acidic solution.

A) MnO4−(aq)+ 8H+(aq)→ Mn2+(aq)+ 4H2O(l)
B) MnO4−(aq)+ 5e− → Mn2+(aq)+ 2O2(g)
C) MnO4−(aq)+ 4H+(aq)+ 3e− → Mn2+(aq)+ 4OH−(aq)
D) MnO4−(aq)+ 4H+(aq)+ 5e− → Mn2+(aq)+ 4OH−(aq)
E) MnO4−(aq)+ 8H+(aq)+ 5e− → Mn2+(aq)+ 4H2O(l)
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33
Write a balanced equation for the reaction of Na and O2 to form sodium peroxide.

A) 4Na(s)+ O2(g)→ 2Na2O(s)
B) Na(s)+ O2(g)→ NaO2(s)
C) 2Na(s)+ O2(g)→ Na2O2(s)
D) 2Na(s)+ O2(g)→ 2NaO(s)
E) 4Na(s)+ 3O2(g)→ 2Na2O3(s)
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34
Write a balanced equation for the reaction of calcium hydride with water.

A) CaH2(s)+ H2O(l)→ CaOH2(s)+ H2(g)
B) CaH2(s)+ H2O(l)→ CaO(s)+ 2H2(g)
C) CaH2(s)+ H2O(l)→ Ca(s)+ 2H2(g)+ H2O(l)
D) CaH2(s)+ 2H2O(l)→ Ca(s)+ 3H2(g)+ O2(l)
E) CaH2(s)+ 2H2O(l)→ Ca2+(aq)+ 2OH−(aq)+ 2H2(g)
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35
In an aqueous solution,Cu+ undergoes a reaction to form Cu(s)and Cu2+.This reaction is an example of

A) reduction.
B) oxidation.
C) disproportionation.
D) precipitation.
E) amphoterism.
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36
The principal product of the reaction of potassium and oxygen is not K2O.The product is named ____ and has the formula ____.

A) dipotassium trioxide,K2O3
B) potassium monoxide,KO
C) potassium superoxide,KO2
D) potassium peroxide,K2O2
E) potassium trioxide,KO3
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37
Write a balanced chemical equation for the reaction of potassium and water.

A) K(s)+ H2O(l)→ KO(s)+ H2(g)
B) 2K(s)+ 2H2O(l)→ 2KOH(aq)+ H2(g)
C) 2K(s)+ 2H2O(l)→ K2O2(s)+ 2H2(g)
D) 2K(s)+ H2O(l)→ K2O(s)+ H2(g)
E) 4K(s)+ 2H2O(l)→ 4KH(s)+ O2(g)
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38
Strontium oxide reacts with water.Write a balanced equation for this reaction.

A) SrO(s)+ H2O(l)→ Sr2+(aq)+ O2(aq)+ H2O(l)
B) SrO(s)+ H2O(l)→ Sr2+(aq)+ 2OH−(aq)
C) SrO(s)+ H2O(l)→ SrH2(aq)+ O2(g)
D) SrO(s)+ H2O(l)→ Sr2+(aq)+ 2H−(aq)+ O2(g)
E) SrO(s)+ H2O(l)→ Sr(s)+ H2O2(aq)
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39
Write a balanced equation for the reaction of sodium and bromine.

A) Na(s)+ Br−(l)→ NaBr(s)
B) Na(s)+ Br(l)→ NaBr(s)+ Br−(aq)
C) Na(s)+ Br2(l)→ NaBr2(s)
D) 2Na(s)+ Br2(l)→ 2NaBr(s)
E) 4Na(s))+ Br2(l)→ 2Na2Br(s)
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40
Given the half-reactions and Ered \mathrm{E}_{\mathrm{red}}^{\circ} values in the table below, determine which species is the best oxidizing agent.
MnO4(aq)+8H+(aq)+5eMn2+(aq)+4H2O(l)Ered=+1.512 V4H+(aq)+NO3(aq)+3eNO(g)+2H2O(l)Ered=+0.964 VFe3+(aq)+eFe2+(s)Ered=+0.771 V2H+(aq)+2eH2(g)Ered =0.000 V\begin{array}{ll}\mathrm{MnO}_{4}-(a q)+8 \mathrm{H}^{+}(a q)+5 e^{-} \rightarrow \mathrm{Mn}^{2+}(a q)+4 \mathrm{H}_{2} \mathrm{O}(l) & \mathrm{E}_{\mathrm{red}=+1.512 \mathrm{~V}}^{\circ} \\4 \mathrm{H}^{+}(a q)+\mathrm{NO}_{3}-(a q)+3 e^{-} \rightarrow \mathrm{NO}(g)+2 \mathrm{H}_{2} \mathrm{O}(l) & \mathrm{E}_{\mathrm{red}=+0.964 \mathrm{~V}}^{\circ} \\\mathrm{Fe}^{3+}(a q)+e-\rightarrow \mathrm{Fe}^{2+}(s) & \mathrm{E}_{\mathrm{red}}^{\circ}=+0.771 \mathrm{~V} \\2 \mathrm{H}^{+}(a q)+2 e^{-} \rightarrow \mathrm{H}_{2}(g) & \mathrm{E}_{\text {red }}^{\circ}=0.000 \mathrm{~V}\end{array}

A) H+
B) Fe2+
C) Fe3+
D) NO3?
E) MnO4?
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41
Ammonium dichromate, (NH4)2Cr2O7 decomposes in a reaction that resembles the eruption of a volcano.Write a balanced chemical equation for the reaction.

A) (NH4)2Cr2O7(s)→ N2(g)+ 4H2O(g)+ Cr2O3(s)
B) (NH4)2Cr2O7(s)→ 2NH3(g)+ H2Cr2O7(s)
C) (NH4)2Cr2O7(s)→ 2NH3(g)+ 4H2O(g)+ 2CrO3
D) (NH4)2Cr2O7(s)→ 2NH4+(g)+ Cr2O72(g)
E) (NH4)2Cr2O7(s)→ 2NH3(g)+ 3H2(g)+ H2O(g)+ 2CrO3(s)
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42
Potassium superoxide is used to generate oxygen in confined places,such as submarines and spacecraft. 4KO2(s)+ 2CO2(g)→ K2CO3(s)+ 3O2(g)
What mass of oxygen will be produced for each 1.0 g KO2 consumed?

A) 0.23 g
B) 0.34 g
C) 0.45 g
D) 0.60 g
E) 1.0 g
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43
Which of the following cations is not essential to human nutrition?

A) Hg2+
B) Zn2+
C) K+
D) Ca2+
E) Fe2+
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44
Which of the following cations has the highest concentration in the human body?

A) Na+
B) Zn2+
C) K+
D) Ca2+
E) Fe2+
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45
What group of elements tend to form colored salts?

A) Group 1 metals
B) Group 2 metals
C) Transition metals
D) All of the above
E) None of the above
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46
Which metal cation is a component of over 70 enzymes?

A) Al3+
B) Ca2+
C) Co3+
D) Fe2+
E) Zn2+
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47
Sodium azide is used in air bags for automobiles.The gas produced from the decomposition of sodium azide is nitrogen. 2NaN3(s)→ 2Na(s)+ 3N2(g)
What mass of NaN3 is required to inflate a bag with a volume of 45 L at a pressure of 1.0 atm and a temperature of 305 K? The gas law constant is 0.0821 L⋅atm/mol⋅K and the molar mass of NaN3 is 65.0 g/mol.

A) 2.8 × 10−2 g
B) 1.2 × 10−1 g
C) 7.8 × 101 g
D) 1.2 × 102 g
E) 1.8 × 102 g
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48
Ilmenite,an ore used in the production of metallic titanium,is composed of 36.8% iron,31.6% titanium,and 31.6% oxygen.What is the empirical (simplest)formula for ilmenite?

A) FeTiO
B) FeTiO2
C) FeTiO3
D) Fe2TiO4
E) Fe3Ti2O6
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49
Which of the following cations is a component of vitamin B12?

A) Li+
B) Mg2+
C) Ca2+
D) Co2+
E) Hg2+
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50
Which of the following is the principal cation within cell fluid?

A) Na+
B) Mg2+
C) K+
D) Ca2+
E) Fe2+
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51
Which of the following cations is not a trace species in the human body?

A) Be2+
B) Cr3+
C) Co2+
D) Zn2+
E) Cu2+
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