Chapter 19 Test Flashcards

1
Q

Which of the following is the properly balanced equation for the net ionic equation below in acidic solution?
MnO4-(aq) + CN-(aq) -> MnO2(aq) + OCN-(aq)

A

2H+(aq) + 2MnO4-(aq) + 3CN-(aq) -> 2MnO2(aq) + H2O(l) + 3OCN-(aq)

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2
Q

What is the oxidation state of the chromium atom in each of the compounds listed below?

Na2Cr2O7, CrO2, and Cr3+

A

+6, +4, and +3

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3
Q

In the reaction of sodium chlorate and iron(II) sulfate below, which of the following represents the reduction half reaction?
NaClO3(aq) + 8FeSO4(aq) + 4HSO4-(aq) -> NaClO(aq) + 4Fe2(SO4)3(aq) + 2H2O(l)

A

4e- + ClO3-(aq) -> ClO-(aq)

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4
Q

Manganese can be found in many oxidation states. Which of the following is the strongest oxidant?

MnO4−, MnO2, MnCl2, Mn

A

MnO4−

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5
Q

In the diagram of a galvanic cell, which is the cathode?

A

D

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6
Q

Use the standard reduction potentials to calculate the E°cell for the following reaction in an electrolytic cell

Cu2+(aq) + 2Ag(s) -> Cu(s) + 2Ag+(aq)

A

−0.46 V

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7
Q

Calculate the standard Gibbs free energy change in J / mol at 25°C for the following reaction:

Zn2+(aq) + Cu(s) -> Zn(s) + Cu2+(aq)

Based on this ΔG ̊, would you expect Zn2+ ions to plate out on Cu metal?

A

2.123 * 10^5 J/mol, no

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8
Q

Calculate the Ecell for the Cl2/Cl- electrode for 25°C, given these values:

PCl2 = 12.0 atm           [Cl-] = 1.25*10^-3M
Cl2(g) = 2e- -> 2Cl-(aq)            E° = +1.36V
A

+1.56 V

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9
Q

Which equation best describes the solubility of AgCl?

A

Ksp = e^(nFE°cell/RT)

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10
Q

Which of the following has the highest energy-to-mass ratio?

A

lithium battery

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11
Q

The transfer of electrons from iron to oxygen and water is all that is necessary for the formation of rust.

A

false

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12
Q

Given the following standard reduction potentials, which of the following would not be a good choice as a sacrificial anode for iron?

A

nickel

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13
Q

How many milligrams of copper metal would be produced in 24 hours of electroplating of a copper(II) ion solution with 9.0 A of current?
Faraday’s constant is 96,485 coulombs per mole of electrons
1 A = 1 C/s

A

260,000 mg Cu

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14
Q

A strip of copper is placed in a beaker with a 1.0 M solution of Cu(NO3 )2. A strip of silver is placed in a second beaker with A 1.0 M solution of AgNO3. A salt bridge connects the two beakers and the two metal electrodes are connected by wires to a digital voltmeter. The voltmeter reads 0.46 V. Which reaction is occurring at the anode and which reaction is occurring at the cathode? Note: In this cell, the standard reduction potential for Ag | Ag+ is + 0.80 V and the standard reduction potential for Cu | Cu2+ is + 0.34 V.

A

Anode Reaction: Cu -> Cu2+ + 2e-

Cathode Reaction: Ag+ + e- -> Ag

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15
Q

What is the chemical formula for rust?

A

Fe2O3 • H2O

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16
Q

Where does reduction occur in an electrolytic cell?

A

Cathode

17
Q

Why is zinc used in batteries?

A

It is a good reducing agent

18
Q

What is a volt?

A

joule per coulomb

19
Q

What is reduction in a redox reaction?

A

A gain of electrons

20
Q

What is the pH of a solution used in the following galvanic cell with a potential (Ecell ) of −0.365 V at 25°C?

Ni(s)|Ni2+ (0.1M)||H + (?)|H2(1 atm)

R • T / F = 0.0592 at 25°C

A

10.5

21
Q

Which of the following is a disadvantage of a lead-acid storage battery?

A

it has a low energy-to-mass ratio

22
Q

Mercury dry cell batteries are very stable because all of the phases comprising it are either solid or liquid. Why isn’t the mercury battery more commonly used?

A

Mercury is a toxic heavy metal and it is not used more often because of the environmental issues.

23
Q

Why must the switch be open to measure EMF?

A

Because of resistance in the cell

24
Q

What is the balanced equation representing the decomposition of hydrogen peroxide in acidic conditions?
H2O2(aq) –> H2(g) + O2(g)

A

2H+(aq) + 2H2O2(aq) -> H2(g) + O2(g) + 2H2O(l)

25
Q

The state capitol of Iowa has a gold dome. The mass of gold used in plating the dome is 100 troy ounces (1.00 troy ounce = 31.10 grams). How many days would it take to plate out this quantity of gold from an 1.0 M aqueous solution of AuCl3 using an external current of 7.5 A?

A

7