Define oxidation and reduction and explain the basic procedure for balancing redox reactions.
Read more- Chemistry / Chemistry: Structure and Properties 2 / Chapter 19 / Problem 24
Table of Contents
Textbook Solutions for Chemistry: Structure and Properties
Question
The anode of an electrolytic cell must be connected to which terminal—positive or negative—of the power source?
Solution
The first step in solving 19 problem number trying to solve the problem we have to refer to the textbook question: The anode of an electrolytic cell must be connected to which terminal—positive or negative—of the power source?
From the textbook chapter Electrochemistry you will find a few key concepts needed to solve this.
Visible to paid subscribers only
Step 3 of 7)Visible to paid subscribers only
full solution
?The anode of an electrolytic cell must be connected to which terminal—positive or
Chapter 19 textbook questions
-
Chapter 19: Problem 1 Chemistry: Structure and Properties 2 -
Chapter 19: Problem 2 Chemistry: Structure and Properties 2Explain the difference between a voltaic (or galvanic) electrochemical cell and an electrolytic one.
Read more -
Chapter 19: Problem 3 Chemistry: Structure and Properties 2Which reaction (oxidation or reduction) occurs at the anode of a voltaic cell? What is the sign of the anode? Do electrons flow toward or away from the anode?
Read more -
Chapter 19: Problem 4 Chemistry: Structure and Properties 2Which reaction (oxidation or reduction) occurs at the cathode of a voltaic cell? What is the sign of the cathode? Do electrons flow toward or away from the cathode?
Read more -
Chapter 19: Problem 5 Chemistry: Structure and Properties 2Explain the purpose of a salt bridge in an electrochemical cell.
Read more -
Chapter 19: Problem 6 Chemistry: Structure and Properties 2Which unit is used to measure the magnitude of electrical current? Which unit is used to measure the magnitude of a potential difference? Explain how electrical current and potential difference differ.
Read more -
Chapter 19: Problem 7 Chemistry: Structure and Properties 2What is the definition of the standard cell potential \(\left(E_{\text {cell }}^{\circ}\right)\)? What does a large positive standard cell potential imply about the spontaneity of the redox reaction occurring in the cell? What does a negative standard cell potential imply about the reaction? Text Transcription: E_cell^circ
Read more -
Chapter 19: Problem 8 Chemistry: Structure and Properties 2Describe the basic features of a cell diagram (or line notation) for an electrochemical cell.
Read more -
Chapter 19: Problem 9 Chemistry: Structure and Properties 2Why do some electrochemical cells employ inert electrodes such as platinum?
Read more -
Chapter 19: Problem 10 Chemistry: Structure and Properties 2Describe the standard hydrogen electrode (SHE) and explain its use in determining standard electrode potentials.
Read more -
Chapter 19: Problem 11 Chemistry: Structure and Properties 2How is the cell potential of an electrochemical cell \(\left(E_{\text {cell }}^{\circ}\right)\)related to the potentials of the half-cells? Text Transcription: E_cell^°
Read more -
Chapter 19: Problem 12 Chemistry: Structure and Properties 2Does a large positive electrode potential indicate a strong oxidizing agent or a strong reducing agent? What about a large negative electrode potential?
Read more -
Chapter 19: Problem 13 Chemistry: Structure and Properties 2Is a spontaneous redox reaction obtained by pairing any reduction half-reaction with one listed above it or with one listed below it in Table 19.1?
Read more -
Chapter 19: Problem 14 Chemistry: Structure and Properties 2How can Table 19.1 be used to predict whether or not a metal will dissolve in HCl? In \(\mathrm{HNO}_{3}\)? Text Transcription: HNO_3
Read more -
Chapter 19: Problem 118 Chemistry: Structure and Properties 2Calculate \(\Delta G_{\mathrm{rxn}}^{\circ}\) and K for each reaction. a. The reaction of \(\mathrm{Cr}^{2+}(a q)\) with \(\mathrm{Cr}_{2} \mathrm{O}_{7}^{2-}(a q)\) in acid solution to form \(\mathrm{Cr}^{3+}(a q)\). b. The reaction of \(\mathrm{Cr}^{3+}(a q)\) and Cr(s) to form \(\mathrm{Cr}^{2+}(a q)\). [The electrode potential of \(\mathrm{Cr}^{2+}(a q)\) to Cr(s) is -0.91 V.] Text Transcription: deltaG_rxn degree Cr^2+(aq) Cr_2O_7^2-(aq) Cr^3+(aq)
Read more -
Chapter 19: Problem 119 Chemistry: Structure and Properties 2The molar mass of a metal (M) is 50.9 g/mol; it forms a chloride of unknown composition. Electrolysis of a sample of the molten chloride with a current of 6.42 A for 23.6 minutes produces 1.20g of M at the cathode. Determine the empirical formula of the chloride.
Read more -
Chapter 19: Problem 120 Chemistry: Structure and Properties 2A metal forms the fluoride \(\mathrm{MF}_{3}\). Electrolysis of the molten fluoride by a current of 3.86 A for 16.2 minutes deposits 1.25 g of the metal. Calculate the molar mass of the metal. Text Transcription: MF_3
Read more -
Chapter 19: Problem 121 Chemistry: Structure and Properties 2A sample of impure tin of mass 0.535 g is dissolved in strong acid to give a solution of \(\mathrm{Sn}^{2+}\). The solution is then titrated with a 0.0448 M solution of \(\mathrm{NO}_{3}{ }^{-}\), which is reduced to NO(g). The equivalence point is reached upon the addition of 0.0344 L of the \(\mathrm{NO}_{3}{ }^{-}\) solution. Find the percent by mass of tin in the original sample, assuming that it contains no other reducing agents. Text Transcription: Sn^2+ NO_3^-
Read more -
Chapter 19: Problem 122 Chemistry: Structure and Properties 2A 0.0251-L sample of a solution of \(\mathrm{Cu}^{+}\) requires 0.0322 L of 0.129M \(\mathrm{KMnO}_{4}\) solution to reach the equivalence point. The products of the reaction are \(\mathrm{Cu}^{2+}\) and \(\mathrm{Mn}^{2+}\). What is the concentration of the \(\mathrm{Cu}^{2+}\) solution? Text Transcription: Cu^+ Cu^2+ KMnO_4 Mn^2+
Read more -
Chapter 19: Problem 123 Chemistry: Structure and Properties 2A current of 11.3 A is applied to 1.25 L of a solution of 0.552 M HBr, converting some of the \(\mathrm{H}^{+}\) to \(\mathrm{H}_{2}(g)\), which bubbles out of the solution. What is the pH of the solution after 73 minutes? Text Transcription: H^+ H_2(g)
Read more -
Chapter 19: Problem 124 Chemistry: Structure and Properties 2A 215 mL sample of a 0.500 M NaCl solution with an initial pH of 7.00 is subjected to electrolysis. After 15.0 minutes, a 10.0 mL portion (or aliquot) of the solution is removed from the cell and titrated with 0.100 M HCl solution. The endpoint in the titration is reached upon addition of 22.8 mL of HCl. Assuming constant current, how much current (in A) was running through the cell?
Read more -
Chapter 19: Problem 125 Chemistry: Structure and Properties 2An \(\mathrm{MnO}_{2}(s) / \mathrm{Mn}^{2+}(a q)\) electrode in which the pH is 10.24 is prepared. Find the \(\left[\mathrm{Mn}^{2+}\right]\) necessary to lower the potential of the half-cell to 0.00V (at \(25^{\circ} \mathrm{C}\)). Text Transcription: MnO_2(s)/Mn^2+(aq) [Mn^2+] 25 degree C
Read more -
Chapter 19: Problem 126 Chemistry: Structure and Properties 2To what pH should you adjust a standard hydrogen electrode to achieve an electrode potential of -0.122 V? (Assume that the partial pressure of hydrogen gas remains at 1 atm.)
Read more -
Chapter 19: Problem 127 Chemistry: Structure and Properties 2Suppose a hydrogen–oxygen fuel-cell generator produces electricity for a house. Use the balanced redox reactions and the standard cell potential to predict the volume of hydrogen gas (at STP) required each month to generate the electricity. Assume the home uses \(1.2 \times 10^{3} \mathrm{kWh}\) of electricity per month. Text Transcription: 1.2 x 10^3 kWh
Read more -
Chapter 19: Problem 15 Chemistry: Structure and Properties 2Explain why \(\mathrm{E}_{\mathrm{cell}}^{\circ}, \Delta G_{\mathrm{rxn}}^{\circ}\) and K are all interrelated. Text Transcription: E_cell^° Delta G^°_rxn
Read more -
Chapter 19: Problem 16 Chemistry: Structure and Properties 2Does a redox reaction with a small equilibrium constant (K 6 1) have a positive or a negative \(E_{\text {cell }}^{\circ}\)? Does it have a positive or a negative \(\Delta G_{r x n}^{\circ}\)? Text Transcription: E_cell^° Delta G^°_rxn
Read more -
Chapter 19: Problem 17 Chemistry: Structure and Properties 2How does \(E_{\text {cell }}\) depend on the concentrations of the reactants and products in the redox reaction occurring in the cell? What effect does increasing the concentration of a reactant have on \(E_{\text {cell }}\)? Increasing the concentration of a product? Text Transcription: E_cell
Read more -
Chapter 19: Problem 18 Chemistry: Structure and Properties 2Use the Nernst equation to show that \(\mathrm{E}_{\mathrm{cell}}=\mathrm{E}_{\text {cell }}^{\circ}\) under standard conditions. Text Transcription: E_cell = E_cell^°l
Read more -
Chapter 19: Problem 19 Chemistry: Structure and Properties 2What is a concentration electrochemical cell?
Read more -
Chapter 19: Problem 20 Chemistry: Structure and Properties 2What are the anode and cathode reactions in a common dry-cell battery? In an alkaline battery?
Read more -
Chapter 19: Problem 21 Chemistry: Structure and Properties 2What are the anode and cathode reactions in a lead–acid storage battery? What happens when the battery is recharged?
Read more -
Chapter 19: Problem 22 Chemistry: Structure and Properties 2What are the three common types of portable rechargeable batteries, and how does each one work?
Read more -
Chapter 19: Problem 23 Chemistry: Structure and Properties 2What is a fuel cell? What is the most common type of fuel cell, and what reactions occur at its anode and cathode?
Read more -
Chapter 19: Problem 24 Chemistry: Structure and Properties 2The anode of an electrolytic cell must be connected to which terminal—positive or negative—of the power source?
Read more -
Chapter 19: Problem 25 Chemistry: Structure and Properties 2What species is oxidized, and what species is reduced in the electrolysis of a pure molten salt?
Read more -
Chapter 19: Problem 26 Chemistry: Structure and Properties 2If an electrolytic cell contains a mixture of species that can be oxidized, how do you determine which species will actually be oxidized? If it contains a mixture of species that can be reduced, how do you determine which one will actually be reduced?
Read more -
Chapter 19: Problem 27 Chemistry: Structure and Properties 2Why does the electrolysis of an aqueous sodium chloride solution produce hydrogen gas at the cathode?
Read more -
Chapter 19: Problem 28 Chemistry: Structure and Properties 2What is overvoltage in an electrochemical cell? Why is it important?
Read more -
Chapter 19: Problem 29 Chemistry: Structure and Properties 2How is the amount of current flowing through an electrolytic cell related to the amount of product produced in the redox reaction?
Read more -
Chapter 19: Problem 30 Chemistry: Structure and Properties 2What is corrosion? Why is corrosion only a problem for some metals (such as iron)?
Read more -
Chapter 19: Problem 31 Chemistry: Structure and Properties 2Explain the role of each of the following in promoting corrosion: moisture, electrolytes, and acids.
Read more -
Chapter 19: Problem 32 Chemistry: Structure and Properties 2How can the corrosion of iron be prevented?
Read more -
Chapter 19: Problem 33 Chemistry: Structure and Properties 2Balance each redox reaction occurring in acidic aqueous solution. a. \(\mathrm{K}(\mathrm{s})+\mathrm{Cr}^{3+}(a q) \longrightarrow \mathrm{Cr}(s)+\mathrm{K}^{+}(a q)\) b. \(\mathrm{Al}(\mathrm{s})+\mathrm{Fe}^{2+}(a q) \longrightarrow \mathrm{Al}^{3+}(a q)+\mathrm{Fe}(s)\) c. \(\mathrm{BrO}_{3}{ }^{-}(a q)+\mathrm{N}_{2} \mathrm{H}_{4}(g) \longrightarrow \mathrm{Br}^{-}(a q)+\mathrm{N}_{2}(g)\) Text Transcription: K(s) + Cr^3+(aq) ¡ Cr(s) + K^+(aq) Al(s) + Fe^2+(aq) ¡ Al^3+(aq) + Fe(s) BrO_3^-(aq) + N_2H_4(g) ¡ Br^-(aq) + N_2(g)
Read more -
Chapter 19: Problem 34 Chemistry: Structure and Properties 2Balance each redox reaction occurring in acidic aqueous solution. a. \(\mathrm{Zn}(s)+\mathrm{Sn}^{2+}(a q) \longrightarrow \mathrm{Zn}^{2+}(a q)+\mathrm{Sn}(s)\) b. \(\mathrm{Mg}(s)+\mathrm{Cr}^{3+}(a q) \longrightarrow \mathrm{Mg}^{2+}(a q)+\mathrm{Cr}(s)\) c. \(\mathrm{MnO}_{4}^{-}(a q)+\mathrm{Al}(s) \longrightarrow \mathrm{Mn}^{2+}(a q)+\mathrm{Al}^{3+}(a q)\) Text Transcription: Zn(s) + Sn^2+(aq) ¡ Zn^2+(aq) + Sn(s) Mg(s) + Cr^3+(aq) ¡ Mg^2+(aq) + Cr(s) MnO_4^-(aq) + Al(s) ¡ Mn^2+(aq) + Al^3+(aq)
Read more -
Chapter 19: Problem 35 Chemistry: Structure and Properties 2Balance each redox reaction occurring in acidic aqueous solution. a. \(\mathrm{PbO}_{2}(s)+\mathrm{I}^{-}(a q) \longrightarrow \mathrm{Pb}^{2+}(a q)+\mathrm{I}_{2}(s)\) b. \(\mathrm{SO}_{3}{ }^{2-}(a q)+\mathrm{MnO}_{4}^{-}(a q) \longrightarrow \mathrm{SO}_{4}{ }^{2-}(a q)+\mathrm{Mn}^{2+}(a q)\) c. \(\mathrm{S}_{2} \mathrm{O}_{3}{ }^{2-}(a q)+\mathrm{Cl}_{2}(g) \longrightarrow \mathrm{SO}_{4}{ }^{2-}(a q)+\mathrm{Cl}^{2}(a q)\) Text Transcription: PbO_2(s) + I^-(aq) ¡ Pb^2+(aq) + I_2(s) SO_3^2-(aq) + MnO_4^-(aq) ¡ SO_4^2-(aq) + Mn^2+(aq) S_2O_3^2-(aq) + Cl_2(g) ¡ SO_4^2-(aq) + Cl^2 (aq)
Read more -
Chapter 19: Problem 36 Chemistry: Structure and Properties 2Balance each redox reaction occurring in acidic aqueous solution. a. \(\mathrm{I}^{-}(a q)+\mathrm{NO}_{2}^{-}(a q) \longrightarrow \mathrm{I}_{2}(s)+\mathrm{NO}(g)\) b. \(\mathrm{ClO}_{4}^{-}(a q)+\mathrm{Cl}^{-}(a q) \longrightarrow \mathrm{ClO}_{3}^{-}(a q)+\mathrm{Cl}_{2}(g)\) c. \(\mathrm{NO}_{3}^{-}(a q)+\mathrm{Sn}^{2+}(a q) \longrightarrow \mathrm{Sn}^{4+}(a q)+\mathrm{NO}(g)\) Text Transcription: I^-(aq) + NO_2-(aq) ¡ I_2(s) + NO(g) ClO_4^-(aq) + Cl^-(aq) ¡ ClO_3^-(aq) + Cl_2(g) NO_3^-(aq) + Sn^2+(aq) ¡ Sn^4+(aq) + NO(g)
Read more -
Chapter 19: Problem 37 Chemistry: Structure and Properties 2Balance each redox reaction occurring in basic aqueous solution. a. \(\mathrm{H}_{2} \mathrm{O}_{2}(a q)+\mathrm{ClO}_{2}(a q) \longrightarrow \mathrm{ClO}_{2}^{-}(a q)+\mathrm{O}_{2}(g)\) b. \(\mathrm{Al}(s)+\mathrm{MnO}_{4}^{-}(a q) \longrightarrow \mathrm{MnO}_{2}(s)+\mathrm{Al}(\mathrm{OH})_{4}^{-}(a q)\) c. \(\mathrm{Cl}_{2}(g) \longrightarrow \mathrm{Cl}^{-}(a q)+\mathrm{ClO}^{-}(a q)\) Text Transcription: H_2O_2(aq) + ClO_2(aq) ¡ ClO_2^-(aq) + O_2(g) Al(s) + MnO_4^-(aq) ¡ MnO_2(s) + Al(OH)_4^-(aq) Cl_2(g) ¡ Cl^-(aq) + ClO^-(aq)
Read more -
Chapter 19: Problem 38 Chemistry: Structure and Properties 2Balance each redox reaction occurring in basic aqueous solution. a. \(\mathrm{MnO}_{4}^{-}(a q)+\mathrm{Br}^{-}(a q) \longrightarrow \mathrm{MnO}_{2}(s)+\mathrm{BrO}_{3}^{-}(a q)\) b. \(\mathrm{Ag}(s)+\mathrm{CN}^{-}(a q)+\mathrm{O}_{2}(g) \longrightarrow \mathrm{Ag}(\mathrm{CN})_{2}{ }^{-}(a q)\) c. \(\mathrm{NO}_{2}^{-}(a q)+\mathrm{Al}(s) \longrightarrow \mathrm{NH}_{3}(g)+\mathrm{AlO}_{2}^{-}(a q)\) Text Transcription: MnO_4^-(aq) + Br^-(aq) ¡ MnO_2(s) + BrO_3^-(aq) Ag(s) + CN^-(aq) + O_2(g) ¡ Ag(CN)_2^-(aq) NO_2^-(aq) + Al(s) ¡ NH_3(g) + AlO_2^-(aq)
Read more -
Chapter 19: Problem 39 Chemistry: Structure and Properties 2Sketch a voltaic cell for each redox reaction. Label the anode and cathode and indicate the half-reaction that occurs at each electrode and the species present in each solution. Also indicate the direction of electron flow. a. \(2 \mathrm{Ag}^{+}(a q)+\mathrm{Pb}(s) \longrightarrow 2 \mathrm{Ag}(s)+\mathrm{Pb}^{2+}(a q)\) b. \(2 \mathrm{ClO}_{2}(g)+2 \mathrm{I}^{-}(a q) \longrightarrow 2 \mathrm{ClO}_{2}^{-}(a q)+\mathrm{I}_{2}(s)\) c. \(\mathrm{O}_{2}(g)+4 \mathrm{H}^{+}(a q)+2 \mathrm{Zn}(s) \longrightarrow 2 \mathrm{H}_{2} \mathrm{O}(\mathrm{l})+2 \mathrm{Zn}^{2+}(a q)\) Text Transcription: 2 Ag^+(aq) + Pb(s) ¡ 2 Ag(s) + Pb^2+(aq) 2 ClO_2(g) + 2 I^-(aq) ¡ 2 ClO_2^-(aq) + I_2(s) O_2(g) + 4 H^+(aq) + 2 Zn(s) ¡ 2 H_2O(l) + 2 Zn^2+(aq)
Read more -
Chapter 19: Problem 40 Chemistry: Structure and Properties 2Sketch a voltaic cell for each redox reaction. Label the anode and cathode and indicate the half-reaction that occurs at each electrode and the species present in each solution. Also indicate the direction of electron flow. a. \(\mathrm{Ni}^{2+}(a q)+\mathrm{Mg}(s) \longrightarrow \mathrm{Ni}(s)+\mathrm{Mg}^{2+}(a q)\) b. \(2 \mathrm{H}^{+}(a q)+\mathrm{Fe}(\mathrm{s}) \longrightarrow \mathrm{H}_{2}(g)+\mathrm{Fe}^{2+}(a q)\) c. \(\begin{aligned} 2 \mathrm{NO}_{3}^{-}(a q)+8 \mathrm{H}^{+}(a q)+3 \mathrm{Cu}(s) \longrightarrow & \\ 2 \mathrm{NO}(g)+4 \mathrm{H}_{2} \mathrm{O}(\mathrm{l})+3 \mathrm{Cu}^{2+}(a q) \end{aligned}\) Text Transcription: Ni^2+(aq) + Mg(s) ¡ Ni(s) + Mg^2+(aq) 2 H^+(aq) + Fe(s) ¡ H_2(g) + Fe^2+(aq) 2 NO_3^-(aq) + 8 H^+(aq) + 3 Cu(s) ¡2 NO(g) + 4 H_2O(l) + 3 Cu^2+(aq)
Read more -
Chapter 19: Problem 41 Chemistry: Structure and Properties 2Calculate the standard cell potential for each of the electrochemical cells in Problem 39.
Read more -
Chapter 19: Problem 42 Chemistry: Structure and Properties 2Calculate the standard cell potential for each of the electrochemical cells in Problem 40.
Read more -
Chapter 19: Problem 43 Chemistry: Structure and Properties 2Consider the voltaic cell: a. Determine the direction of electron flow and label the anode and the cathode. b. Write a balanced equation for the overall reaction and calculate \(\mathrm{E}_{\text {cell }}^{\circ}\). c. Label each electrode as negative or positive. d. Indicate the direction of anion and cation flow in the salt bridge. Text Transcription: E_cell degree
Read more -
Chapter 19: Problem 44 Chemistry: Structure and Properties 2Consider the voltaic cell: a. Determine the direction of electron flow and label the anode and the cathode. b. Write a balanced equation for the overall reaction and calculate \(\mathrm{E}_{\text {cell }}^{\circ}\). c. Label each electrode as negative or positive. d. Indicate the direction of anion and cation flow in the salt bridge. Text Transcription: E_cell degree
Read more -
Chapter 19: Problem 45 Chemistry: Structure and Properties 2Use line notation to represent each electrochemical cell in Problem 39.
Read more -
Chapter 19: Problem 46 Chemistry: Structure and Properties 2Use line notation to represent each electrochemical cell in Problem 40.
Read more -
Chapter 19: Problem 47 Chemistry: Structure and Properties 2Make a sketch of the voltaic cell represented by the line notation. Write the overall balanced equation for the reaction and calculate \(\mathrm{E}_{\text {cell }}^{\circ}\). \(\operatorname{Sn}(s)\left|\mathrm{Sn}^{2+}(a q) \| \mathrm{NO}(g)\right| \mathrm{NO}_{3}^{-}(a q), \mathrm{H}^{+}(a q) \mid \operatorname{Pt}(s)\) Text Transcription: E_cell degree Sn(s) | Sn^2+(aq) || NO(g) | NO_3 ^-(aq), H^+(aq) | Pt(s)
Read more -
Chapter 19: Problem 48 Chemistry: Structure and Properties 2Make a sketch of the voltaic cell represented by the line notation. Write the overall balanced equation for the reaction and calculate \(\mathrm{E}_{\text {cell }}^{\circ}\). \(\mathrm{Mn}(s)\left|\mathrm{Mn}^{2+}(a q) \| \mathrm{ClO}_{2}^{-}(a q)\right| \mathrm{ClO}_{2}(g) \mid \operatorname{Pt}(s)\) Text Transcription: E_cell degree Mn(s) | Mn^2+(aq) || ClO_2^-(aq) | ClO_2(g) | Pt(s)
Read more -
Chapter 19: Problem 49 Chemistry: Structure and Properties 2Determine whether or not each redox reaction occurs spontaneously in the forward direction. a. \(\mathrm{Ni}(\mathrm{s})+\mathrm{Zn}^{2+}(a q) \longrightarrow \mathrm{Ni}^{2+}(a q)+\mathrm{Zn}(s)\) b. \(\mathrm{Ni}(s)+\mathrm{Pb}^{2+}(a q) \longrightarrow \mathrm{Ni}^{2+}(a q)+\mathrm{Pb}(s)\) c. \(\mathrm{Al}(s)+3 \mathrm{Ag}^{+}(a q) \longrightarrow \mathrm{Al}^{3+}(a q)+3 \mathrm{Ag}(s)\) d. \(\mathrm{Pb}(s)+\mathrm{Mn}^{2+}(a q) \longrightarrow \mathrm{Pb}^{2+}(a q)+\mathrm{Mn}(s)\) Text Transcription: Ni(s) + Zn^2+(aq) rightarrow Ni^2+(aq) + Zn(s) Ni(s) + Pb^2+(aq) rightarrow Ni^2+(aq) + Pb(s) Al(s) + 3 Ag^+(aq) rightarrow Al^3+(aq) + 3 Ag(s) Pb(s) + Mn^2+(aq) rightarrow Pb^2+(aq) + Mn(s)
Read more -
Chapter 19: Problem 50 Chemistry: Structure and Properties 2Determine whether each redox reaction occurs spontaneously in the forward direction. a. \(\mathrm{Ca}^{2+}(a q)+\mathrm{Zn}(s) \longrightarrow \mathrm{Ca}(s)+\mathrm{Zn}^{2+}(a q)\) b. \(2 \mathrm{Ag}^{+}(a q)+\mathrm{Ni}(s) \longrightarrow 2 \mathrm{Ag}(s)+\mathrm{Ni}^{2+}(a q)\) c. \(\mathrm{Fe}(s)+\mathrm{Mn}^{2+}(a q) \longrightarrow \mathrm{Fe}^{2+}(a q)+\mathrm{Mn}(s)\) d. \(2 \mathrm{Al}(s)+3 \mathrm{~Pb}^{2+}(a q) \longrightarrow 2 \mathrm{Al}^{3+}(a q)+3 \mathrm{~Pb}(s)\) Text Transcription: Ca^2+(aq) + Zn(s) rightarrow Ca(s) + Zn^2+(aq) 2 Ag^+(aq) + Ni(s) rightarrow 2 Ag(s) + Ni^2+(aq) Fe(s) + Mn^2+(aq) rightarrow Fe^2+(aq) + Mn(s) 2 Al(s) + 3 Pb^2+(aq) rightarrow 2 Al^3+(aq) + 3 Pb(s)
Read more -
Chapter 19: Problem 51 Chemistry: Structure and Properties 2Which metal could you use to reduce \(\mathrm{Mn}^{2+}\) ions but not \(\mathrm{Mg}^{2+}\) ions? Text Transcription: Mg^2+ Mn^2+
Read more -
Chapter 19: Problem 52 Chemistry: Structure and Properties 2Which metal can be oxidized with an \(\mathrm{Sn}^{2+}\) solution but not with an \(\mathrm{Fe}^{2+}\) solution? Text Transcription: Sn^2+ Fe^2+
Read more -
Chapter 19: Problem 53 Chemistry: Structure and Properties 2Determine whether or not each metal dissolves in 1 M HCl. For those metals that dissolve, write a balanced redox reaction showing what happens when the metal dissolves. a. Al b. Ag c. Pb
Read more -
Chapter 19: Problem 54 Chemistry: Structure and Properties 2Determine whether or not each metal dissolves in 1 M HCl. For those metals that dissolve, write a balanced redox reaction showing what happens when the metal dissolves. a. Cu b. Fe c. Au
Read more -
Chapter 19: Problem 55 Chemistry: Structure and Properties 2Determine whether or not each metal dissolves in 1 M \(\mathrm{HNO}_{3}\). For those metals that dissolve, write a balanced redox reaction showing what happens when the metal dissolves. a. Cu b. Au Text Transcription: HNO_3
Read more -
Chapter 19: Problem 56 Chemistry: Structure and Properties 2Determine whether or not each metal dissolves in 1 M \(\mathrm{HIO}_{3}\). For those metals that dissolve, write a balanced redox equation for the reaction that occurs. a. Au b. Cr Text Transcription: HIO_3
Read more -
Chapter 19: Problem 57 Chemistry: Structure and Properties 2Calculate \(E_{\text {cell }}^{\circ}\) for each balanced redox reaction and determine if the reaction is spontaneous as written. a. \(2 \mathrm{Cu}(s)+\mathrm{Mn}^{2+}(a q) \longrightarrow 2 \mathrm{Cu}^{+}(a q)+\operatorname{Mn}(s)\) b. \(\mathrm{MnO}_{2}(s)+4 \mathrm{H}^{+}(a q)+\mathrm{Zn}(s) \longrightarrow\mathrm{Mn}^{2+}(a q)+2 \mathrm{H}_{2} \mathrm{O}(l)+\mathrm{Zn}^{2+}(a q)\) c. \(\mathrm{Cl}_{2}(g)+2 \mathrm{F}^{-}(a q) \longrightarrow \mathrm{F}_{2}(g)+2 \mathrm{Cl}^{-}(a q)\) Text Transcription: E_cell degree Cu(s) + Mn^2+(aq) rightarrow 2 Cu^+(aq) + Mn(s) MnO2(s) + 4 H^+(aq) + Zn(s) rightarrow Mn^2+(aq) + 2 H_2O(l) + Zn^2+(aq) Cl_2(g) + 2 F^-(aq) rightarrow F_2(g) + 2 Cl^-(aq)
Read more -
Chapter 19: Problem 58 Chemistry: Structure and Properties 2Calculate \(\mathrm{E}_{\text {cell }}^{\circ}\) for each balanced redox reaction and determine if the reaction is spontaneous as written. a. \(\mathrm{O}_{2}(g)+2 \mathrm{H}_{2} \mathrm{O}(l)+4 \mathrm{Ag}(s) \longrightarrow 4 \mathrm{OH}^{-}(a q)+4 \mathrm{Ag}^{+}(a q)\) b. \(\mathrm{Br}_{2}(l)+2 \mathrm{I}^{-}(a q) \longrightarrow 2 \mathrm{Br}^{-}(a q)+\mathrm{I}_{2}(s)\) c. \(\mathrm{PbO}_{2}(s)+4 \mathrm{H}^{+}(a q)+\mathrm{Sn}(s) \longrightarrow\mathrm{Pb}^{2+}(a q)+2 \mathrm{H}_{2} \mathrm{O}(l)+\mathrm{Sn}^{2+}(a q)\) Text Transcription: E_cell degree O_2(g) + 2 H_2O(l) + 4 Ag(s) rightarrow 4 OH^-(aq) + 4 Ag^+(aq) Br_2(l) + 2 I^-(aq) rightarrow 2 Br^-(aq) + I_2(s) PbO_2(s) + 4 H^+(aq) + Sn(s) rightarrow Pb^2+(aq) + 2 H_2O(l) + Sn^2+(aq)
Read more -
Chapter 19: Problem 59 Chemistry: Structure and Properties 2Which metal cation is the best oxidizing agent? a. \(\mathrm{Pb}^{2+}\) b. \(\mathrm{Cr}^{3+}\) c. \(\mathrm{Fe}^{2+}\) d. \(\mathrm{Sn}^{2+}\) Text Transcription: Pb^2+ Cr^3+ Fe^2+ Sn^2+
Read more -
Chapter 19: Problem 60 Chemistry: Structure and Properties 2Which metal is the best reducing agent? a. Mn b. Al c. Ni d. Cr
Read more -
Chapter 19: Problem 61 Chemistry: Structure and Properties 2Use tabulated electrode potentials to calculate \(\Delta G_{\mathrm{rxn}}^{\circ}\) for each reaction at \(25^{\circ} \mathrm{C}\). a. \(\mathrm{Pb}^{2+}(a q)+\mathrm{Mg}(s) \longrightarrow \mathrm{Pb}(s)+\mathrm{Mg}^{2+}(a q)\) b. \(\mathrm{Br}_{2}(l)+2 \mathrm{Cl}^{-}(a q) \longrightarrow 2 \mathrm{Br}^{-}(a q)+\mathrm{Cl}_{2}(g)\) c. \(\mathrm{MnO}_{2}(s)+4 \mathrm{H}^{+}(a q)+\mathrm{Cu}(s) \longrightarrow\mathrm{Mn}^{2+}(a q)+2 \mathrm{H}_{2} \mathrm{O}(l)+\mathrm{Cu}^{2+}(a q)\) Text Transcription: deltaG_rxn degree 25 degree C a. Pb^2+(aq) + Mg(s) rightarrow Pb(s) + Mg^2+(aq) b. Br_2(l) + 2 Cl^-(aq) rightarrow 2 Br-(aq) + Cl_2(g) c. MnO_2(s) + 4 H^+(aq) + Cu(s) rightarrow Mn^2+(aq) + 2 H_2O(l) + Cu^2+(aq)
Read more -
Chapter 19: Problem 62 Chemistry: Structure and Properties 2Use tabulated electrode potentials to calculate \(\Delta G_{\mathrm{rxn}}^{\circ}\) for each reaction at \(25^{\circ} \mathrm{C}\). a. \(2 \mathrm{Fe}^{3+}(a q)+3 \operatorname{Sn}(s) \longrightarrow 2 \mathrm{Fe}(s)+3 \mathrm{Sn}^{2+}(a q)\) b. \(\mathrm{O}_{2}(g)+2 \mathrm{H}_{2} \mathrm{O}(l)+2 \mathrm{Cu}(s) \longrightarrow 4 \mathrm{OH}^{-}(a q)+2 \mathrm{Cu}^{2+}(a q)\) c. \(\mathrm{Br}_{2}(l)+2 \mathrm{I}^{-}(a q) \longrightarrow 2 \mathrm{Br}^{-}(a q)+\mathrm{I}_{2}(s)\) Text Transcription: deltaG_rxn degree 25 degree C 2 Fe3+(aq) + 3 Sn(s) rightarrow 2 Fe(s) + 3 Sn2+(aq) O2(g) + 2 H2O(l) + 2 Cu(s) rightarrow 4 OH-(aq) + 2 Cu2+(aq) Br2(l) + 2 I-(aq) rightarrow 2 Br-(aq) + I2(s)
Read more -
Chapter 19: Problem 63 Chemistry: Structure and Properties 2Calculate the equilibrium constant for each of the reactions in Problem 61.
Read more -
Chapter 19: Problem 64 Chemistry: Structure and Properties 2Calculate the equilibrium constant for each of the reactions in Problem 62.
Read more -
Chapter 19: Problem 65 Chemistry: Structure and Properties 2Calculate the equilibrium constant for the reaction between \(\mathrm{Ni}^{2+}(a q)\) and Cd(s) (at \(25^{\circ} \mathrm{C}\)). Text Transcription: Ni^2+(aq) 25 degree C
Read more -
Chapter 19: Problem 66 Chemistry: Structure and Properties 2Calculate the equilibrium constant for the reaction between \(\mathrm{Fe}^{2+}(a q)\) and Zn(s) (at \(25^{\circ} \mathrm{C}\)). Text Transcription: Fe^2+(aq) 25 degree C
Read more -
Chapter 19: Problem 67 Chemistry: Structure and Properties 2Calculate \(\Delta G_{\mathrm{rxn}}^{\circ}\) and \(E_{\text {cell }}^{\circ}\) for a redox reaction with n = 2 that has an equilibrium constant of K = 25 (at \(25^{\circ} \mathrm{C}\)). Text Transcription: deltaG_rxn degree E_cell degree 25 degree C
Read more -
Chapter 19: Problem 68 Chemistry: Structure and Properties 2Calculate \(\Delta G_{\mathrm{rxn}}^{\circ}\) and \(E_{\text {cell }}^{\circ}\) for a redox reaction with n = 3 that has an equilibrium constant of K = 0.050 (at \(25^{\circ} \mathrm{C}\)). Text Transcription: deltaG_rxn degree E_cell degree 25 degree C
Read more -
Chapter 19: Problem 69 Chemistry: Structure and Properties 2A voltaic cell employs the following redox reaction: \(\mathrm{Sn}^{2+}(a q)+\operatorname{Mn}(s) \longrightarrow \operatorname{Sn}(s)+\operatorname{Mn}^{2+}(a q)\) Calculate the cell potential at \(25^{\circ} \mathrm{C}\) under each set of conditions. a. standard conditions b. \(\left[\mathrm{Sn}^{2+}\right]=0.0100 \mathrm{M}\); \(\left[\mathrm{Mn}^{2+}\right]=2.00 \mathrm{M}\) c. \(\left[\mathrm{Sn}^{2+}\right]=2.00 \mathrm{M}\);\(\left[\mathrm{Mn}^{2+}\right]=0.0100 \mathrm{M}\) Text Transcription: Sn^2+(aq) + Mn(s) rightarrow Sn(s) + Mn^2+(aq) [Sn^2+] = 0.0100 M [Mn^2+] = 2.00 M [Sn^2+] = 2.00 M [Mn^2+] = 0.0100 M 25 degree C
Read more -
Chapter 19: Problem 70 Chemistry: Structure and Properties 2A voltaic cell employs the redox reaction: \(2 \mathrm{Fe}^{3+}(a q)+3 \mathrm{Mg}(s) \longrightarrow 2 \mathrm{Fe}(s)+3 \mathrm{Mg}^{2+}(a q)\) Calculate the cell potential at \(25^{\circ} \mathrm{C}\) under each set of conditions. a. standard conditions b. \(\left[\mathrm{Fe}^{3+}\right]=1.0 \times 10^{-3} \mathrm{M}\); \(\left[\mathrm{Mg}^{2+}\right]=2.50 \mathrm{M}\) c. \(\left[\mathrm{Fe}^{3+}\right]=2.00 \mathrm{M}\); \(\left[\mathrm{Mg}^{2+}\right]=1.5 \times 10^{-3} \mathrm{M}\) Text Transcription: 2 Fe^3+(aq) + 3 Mg(s) rightarrow 2 Fe(s) + 3 Mg^2+(aq) 25 degree C [Fe^3+] = 1.0 x 10^-3 M [Mg^2+] = 2.50 M [Fe^3+] = 2.00 M [Mg^2+] = 1.5 x 10^-3 M
Read more -
Chapter 19: Problem 71 Chemistry: Structure and Properties 2An electrochemical cell is based on these two half-reactions: Ox: \(\mathrm{Pb}(\mathrm{s}) \longrightarrow \mathrm{Pb}^{2+}(a q, 1.10 \mathrm{M})+2 \mathrm{e}^{-}\) Red: \(\mathrm{MnO}_{4}^{-}(a q, 1.50 \mathrm{M})+4 \mathrm{H}^{+}(a q, 2.0 \mathrm{M})+3 \mathrm{e}^{-} \longrightarrow\mathrm{MnO}_{2}(s)+2 \mathrm{H}_{2} \mathrm{O}(l)\) Calculate the cell potential at \(25^{\circ} \mathrm{C}\). Text Transcription: Pb(s) rightarrow Pb^2+(aq, 1.10 M) + 2 e^- MnO_4^-(aq, 1.50 M) + 4 H^+(aq, 2.0 M) + 3 e^- rightarrow MnO_2(s) + 2 H_2O(l) 25 degree C
Read more -
Chapter 19: Problem 72 Chemistry: Structure and Properties 2An electrochemical cell is based on these two half-reactions: Ox: \(\mathrm{Sn}(\mathrm{s}) \longrightarrow \mathrm{Sn}^{2+}(a q, 2.00 \mathrm{M})+2 \mathrm{e}^{-}\) Red: \(\mathrm{ClO}_{2}(g, 1.100 \mathrm{~atm})+\mathrm{e}^{-} \longrightarrow \mathrm{ClO}_{2}^{-}(a q, 2.00 \mathrm{M})\) Calculate the cell potential at\(25^{\circ} \mathrm{C}\). Text Transcription: Sn(s) rightarrow Sn^2+(aq, 2.00 M) + 2 e^- ClO_2(g, 1.100 atm) + e^- rightarrow ClO_2^-(aq, 2.00 M) 25 degree C
Read more -
Chapter 19: Problem 73 Chemistry: Structure and Properties 2A voltaic cell consists of a \(\mathrm{Zn} / \mathrm{Zn}^{2+}\) half-cell and a \(\mathrm{Ni} / \mathrm{Ni}^{2+}\) half-cell at\(25^{\circ} \mathrm{C}\). The initial concentrations of \(\mathrm{Ni}^{2+}\) and \(\mathrm{Zn}^{2+}\) are 1.50 M and 0.100 M, respectively. a. What is the initial cell potential? b. What is the cell potential when the concentration of \(\mathrm{Ni}^{2+}\) has fallen to 0.500 M? c. What are the concentrations of \(\mathrm{Ni}^{2+}\) and \(\mathrm{Zn}^{2+}\) when the cell potential falls to 0.45 V? Text Transcription: Zn/Zn^2+ Ni/Ni^2= Ni^2+ Ni^2+ Zn^2+ Zn^2+ 25 degree C
Read more -
Chapter 19: Problem 74 Chemistry: Structure and Properties 2A voltaic cell consists of a \(\mathrm{Pb} / \mathrm{Pb}^{2+}\) half-cell and a \(\mathrm{Cu} / \mathrm{Cu}^{2+}\) half-cell at \(25^{\circ} \mathrm{C}\). The initial concentrations of \(\mathrm{Pb}^{2+}\) and \(\mathrm{Cu}^{2+}\) are 0.0500 M and 1.50 M, respectively. a. What is the initial cell potential? b. What is the cell potential when the concentration of \(\mathrm{Cu}^{2+}\)has fallen to 0.200 M? c. What are the concentrations of \(\mathrm{Pb}^{2+}\) and Cu2+ when the cell potential falls to 0.35 V? Text Transcription: Pb/Pb^2+ Cu/Cu^2+ Cu^2+ Pb^2+ 25 degree C Cu^2+ Pb^2+
Read more -
Chapter 19: Problem 75 Chemistry: Structure and Properties 2Make a sketch of a concentration cell employing two \(\mathrm{Zn} / \mathrm{Zn}^{2+}\) halfcells. The concentration of \(\mathrm{Zn}^{2+}\) in one of the half-cells is 2.0 M, and the concentration in the other half-cell is \(1.0 \times 10^{-3} \mathrm{M}\). Label the anode and the cathode and indicate the half-reaction occurring at each electrode. Also indicate the direction of electron flow. Text Transcription: Zn/Zn^2+ Zn^2+ 1.0 x 10^-3 M
Read more -
Chapter 19: Problem 76 Chemistry: Structure and Properties 2Consider the concentration cell: a. Label the anode and cathode. b. Indicate the direction of electron flow. c. Indicate what happens to the concentration of \(\mathrm{Pb}^{2+}\) in each half-cell. Text Transcription: Pb^2+
Read more -
Chapter 19: Problem 77 Chemistry: Structure and Properties 2A concentration cell consists of two \(\mathrm{Sn} / \mathrm{Sn}^{2+}\) half-cells. The cell has a potential of 0.10 V at \(25^{\circ} \mathrm{C}\). What is the ratio of the \(\mathrm{Sn}^{2+}\) concentrations in the two half-cells? Text Transcription: Sn/Sn^2+ 25 degree C Sn^2+
Read more -
Chapter 19: Problem 78 Chemistry: Structure and Properties 2A \(\mathrm{Cu} / \mathrm{Cu}^{2+}\) concentration cell has a voltage of 0.22 V at \(25^{\circ} \mathrm{C}\). The concentration of \(\mathrm{Cu}^{2+}\) in one of the half-cells is \(1.5 \times 10^{-3} \mathrm{M}\). What is the concentration of \(\mathrm{Cu}^{2+}\) in the other half-cell? (Assume the concentration in the unknown cell to be the lower of the two concentrations.) Text Transcription: Cu/Cu^2+ Cu^2+ Cu^2+ 25 degree C 1.5 x 10^3- M
Read more -
Chapter 19: Problem 79 Chemistry: Structure and Properties 2Determine the optimum mass ratio of Zn to \(\mathrm{MnO}_{2}\) in an alkaline battery. Text Transcription: MnO_2
Read more -
Chapter 19: Problem 80 Chemistry: Structure and Properties 2What mass of lead sulfate is formed in a lead–acid storage battery when 1.00 g of Pb undergoes oxidation?
Read more -
Chapter 19: Problem 81 Chemistry: Structure and Properties 2Refer to the tabulated values of \(\Delta G_{\mathrm{f}}^{\circ}\) in Appendix IIB to calculate \(E_{\text {cell }}^{\circ}\) for a fuel cell that employs the reaction between methane gas \(\left(\mathrm{CH}_{4}\right)\) and oxygen to form carbon dioxide and gaseous water. Text Transcription: deltaG_f degree E_cell degree (CH_4)
Read more -
Chapter 19: Problem 82 Chemistry: Structure and Properties 2Refer to the tabulated values of \(\Delta G_{\mathrm{f}}^{\circ}\) in Appendix IIB to calculate \(E_{\text {cell }}^{\circ}\) for a fuel cell that employs the following reaction: (\(\Delta G_{\mathrm{f}}^{\circ}\) for \(\mathrm{HC}_{2} \mathrm{H}_{3} \mathrm{O}_{2}(\mathrm{~g})=-374.2 \mathrm{~kJ} / \mathrm{mol}\).) \(\mathrm{CH}_{3} \mathrm{CH}_{2} \mathrm{OH}(g)+\mathrm{O}_{2}(g) \longrightarrow \mathrm{HC}_{2} \mathrm{H}_{3} \mathrm{O}_{2}(g)+\mathrm{H}_{2} \mathrm{O}(g)\) Text Transcription: deltaG_f degree E_cell degree deltaG_f degree HC_2H_3O_2(g) = -374.2 kJ>mol CH_3CH_2OH(g) + O2(g) rightarrow HC_2H_3O_2(g) + H_2O(g)
Read more -
Chapter 19: Problem 83 Chemistry: Structure and Properties 2Determine whether or not each metal, if coated onto iron, would prevent the corrosion of iron. a. Zn b. Sn c. Mn
Read more -
Chapter 19: Problem 84 Chemistry: Structure and Properties 2Determine whether or not each metal, if coated onto iron, would prevent the corrosion of iron. a. Mg b. Cr c. Cu
Read more -
Chapter 19: Problem 85 Chemistry: Structure and Properties 2Consider the electrolytic cell: a. Label the anode and the cathode and indicate the half reactions occurring at each. b. Indicate the direction of electron flow. c. Label the terminals on the battery as positive or negative and calculate the minimum voltage necessary to drive the reaction.
Read more -
Chapter 19: Problem 86 Chemistry: Structure and Properties 2Draw an electrolytic cell in which \(\mathrm{Mn}^{2+}\) is reduced to Mn and Sn is oxidized to \(\mathrm{Mn}^{2+}\). Label the anode and cathode, indicate the direction of electron flow, and write an equation for the half reaction occurring at each electrode. What minimum voltage is necessary to drive the reaction? Text Transcription: Mn^2+ Sn^2+
Read more -
Chapter 19: Problem 87 Chemistry: Structure and Properties 2Write equations for the half-reactions that occur in the electrolysis of molten potassium bromide.
Read more -
Chapter 19: Problem 88 Chemistry: Structure and Properties 2Which products are obtained in the electrolysis of molten NaI?
Read more -
Chapter 19: Problem 89 Chemistry: Structure and Properties 2Write equations for the half-reactions that occur in the electrolysis of a mixture of molten potassium bromide and molten lithium bromide.
Read more -
Chapter 19: Problem 90 Chemistry: Structure and Properties 2Which products are obtained in the electrolysis of a molten mixture of KI and KBr?
Read more -
Chapter 19: Problem 91 Chemistry: Structure and Properties 2Write equations for the half-reactions that occur at the anode and cathode for the electrolysis of each aqueous solution: a. NaBr(aq) b. \(\mathrm{PbI}_{2}(a q)\) c. \(\mathrm{Na}_{2} \mathrm{SO}_{4}(a q)\) Text Transcription: Pbl_2(aq) Na_2SO_4(aq)
Read more -
Chapter 19: Problem 92 Chemistry: Structure and Properties 2Write equations for the half-reactions that occur at the anode and cathode for the electrolysis of each aqueous solution: a. \(\mathrm{Ni}\left(\mathrm{NO}_{3}\right)_{2}(a q)\) b. KCI(aq) c. \(\mathrm{CuBr}_{2}(a q)\) Text Transcription: Ni(NO_3)_2(aq) CuBr_2(aq)
Read more -
Chapter 19: Problem 93 Chemistry: Structure and Properties 2Make a sketch of an electrolytic cell that electroplates copper onto other metal surfaces. Label the anode and the cathode and indicate the reactions that occur at each.
Read more -
Chapter 19: Problem 94 Chemistry: Structure and Properties 2Make a sketch of an electrolytic cell that electroplates nickel onto other metal surfaces. Label the anode and the cathode and indicate the reactions that occur at each.
Read more -
Chapter 19: Problem 95 Chemistry: Structure and Properties 2Copper can be electroplated at the cathode of an electrolytic cell by the half-reaction: \(\mathrm{Cu}^{2+}(a q)+2 \mathrm{e}^{-} \longrightarrow \mathrm{Cu}(\mathrm{s})\) How much time does it take for 325 mg of copper to be plated at a current of 5.6 A? Text Transcription: Cu^2+(aq) + 2 e^- rightarrow Cu(s)
Read more -
Chapter 19: Problem 96 Chemistry: Structure and Properties 2Silver can be electroplated at the cathode of an electrolytic cell by the half-reaction: \(\mathrm{Ag}^{+}(a q)+\mathrm{e}^{-} \longrightarrow \operatorname{Ag}(s)\) What mass of silver plates onto the cathode if a current of 6.8 A flows through the cell for 72 min? Text Transcription: Ag^+(aq) + e^- rightarrow Ag(s)
Read more -
Chapter 19: Problem 97 Chemistry: Structure and Properties 2A major source of sodium metal is the electrolysis of molten sodium chloride. What magnitude of current produces 1.0 kg of sodium metal in 1 hour?
Read more -
Chapter 19: Problem 98 Chemistry: Structure and Properties 2What mass of aluminum metal can be produced per hour in the electrolysis of a molten aluminum salt by a current of 25 A?
Read more -
Chapter 19: Problem 99 Chemistry: Structure and Properties 2Consider the unbalanced redox reaction: \(\mathrm{MnO}_{4}^{-}(a q)+\mathrm{Zn}(s) \longrightarrow \mathrm{Mn}^{2+}(a q)+\mathrm{Zn}^{2+}(a q)\) Balance the equation and determine the volume of a 0.500 M \(\mathrm{KMnO}_{4}\) solution required to completely react with 2.85 g of Zn. Text Transcription: MnO_4^-(aq) + Zn(s) rightarrow Mn^2+(aq) + Zn^2+(aq) KMnO_4
Read more -
Chapter 19: Problem 100 Chemistry: Structure and Properties 2Consider the unbalanced redox reaction: \(\mathrm{Cr}_{3} \mathrm{O}_{7}^{2-}(a q)+\mathrm{Cu}(s) \longrightarrow \mathrm{Cr}^{3+}(a q)+\mathrm{Cu}^{2+}(a q)\) Balance the equation and determine the volume of a 0.850 M \(\mathrm{K}_{2} \mathrm{Cr}_{2} \mathrm{O}_{7}\) solution required to completely react with 5.25 g of Cu. Text Transcription: Cr_2O_7^2-(aq) + Cu(s) rightarrow Cr^3+(aq) + Cu^2+(aq) K_2Cr_2O_7
Read more -
Chapter 19: Problem 101 Chemistry: Structure and Properties 2Consider the molecular view of an Al strip and \(\mathrm{Cu}^{2+}\) solution. Draw a similar sketch showing what happens to the atoms and ions after the Al strip is submerged in the solution for a few minutes. Text Transcription: Cu^2+
Read more -
Chapter 19: Problem 102 Chemistry: Structure and Properties 2Consider the molecular view of an electrochemical cell involving the overall reaction: \(\mathrm{Zn}(s)+\mathrm{Ni}^{2+}(a q) \longrightarrow \mathrm{Zn}^{2+}(a q)+\mathrm{Ni}(s)\) Draw a similar sketch of the cell after it has generated a substantial amount of electrical current. Text Transcription: Zn(s) + Ni^2+(aq) rightarrow Zn^2+(aq) + Ni(s)
Read more -
Chapter 19: Problem 103 Chemistry: Structure and Properties 2Determine whether HI can dissolve each metal sample. If it can, write a balanced chemical reaction showing how the metal dissolves in HI and determine the minimum volume of 3.5 M HI required to completely dissolve the sample. a. 2.15 g Al b. 4.85 g Cu c. 2.42 g Ag
Read more -
Chapter 19: Problem 104 Chemistry: Structure and Properties 2Determine if \(\mathrm{HNO}_{3}\) can dissolve each metal sample. If it can, write a balanced chemical reaction showing how the metal dissolves in \(\mathrm{HNO}_{3}\) and determine the minimum volume of 6.0 M \(\mathrm{HNO}_{3}\) required to completely dissolve the sample. a. 5.90 g Au b. 2.55 g Cu c. 4.83 g Sn Text Transcription: HNO_3
Read more -
Chapter 19: Problem 105 Chemistry: Structure and Properties 2The cell potential of this electrochemical cell depends on the pH of the solution in the anode half-cell. \(\operatorname{Pt}(s)\left|\mathrm{H}_{2}(g, 1 \mathrm{~atm})\right| \mathrm{H}^{+}(a q, ? \mathrm{M}) \| \mathrm{Cu}^{2+}(a q, 1.0 \mathrm{M}) \mid \mathrm{Cu}(s)\) What is the pH of the solution if \(\mathrm{E}_{\text {cell }}\) is 355 mV? Text Transcription: E_cell Pt(s) | H_2(g, 1 atm) | H^+(aq, ? M) || Cu^2+(aq, 1.0 M) Cu(s)
Read more -
Chapter 19: Problem 106 Chemistry: Structure and Properties 2The cell potential of this electrochemical cell depends on the gold concentration in the cathode half-cell. \(\operatorname{Pt}(s)\left|\mathrm{H}_{2}(g, 1.0 \mathrm{~atm})\right| \mathrm{H}^{+}(a q, 1.0 \mathrm{M}) \| \mathrm{Au}^{3+}(a q, ? \mathrm{M}) \mid \mathrm{Au}(s)\) What is the concentration of \(\mathrm{Au}^{3+}\) in the solution if \(\mathrm{E}_{\text {cell }}\) is 1.22V? Text Transcription: Au^3+ E_cell Pt(s) | H_2(g, 1.0 atm) | H^+(aq, 1.0 M) || Au^3+(aq, ? M) Au(s)
Read more -
Chapter 19: Problem 107 Chemistry: Structure and Properties 2Consider the reaction shown here occurring at \(25^{\circ} \mathrm{C}\). \(\mathrm{A}(s)+\mathrm{B}^{2+}(a q) \longrightarrow \mathrm{A}^{2+}(a q)+\mathrm{B}(s) \quad \Delta G_{\mathrm{rxn}}^{\circ}=-14.0 \mathrm{kJ}\) Determine the value of \(\mathrm{E}_{\text {cell }}^{\circ}\) and K for the reaction and complete the table. Text Transcription: E_cell degree 25 degree C A(s) + B^2+(aq) rightarrow A^2+(aq) + B(s) deltaG_rxn degree = -14.0 kJ
Read more -
Chapter 19: Problem 108 Chemistry: Structure and Properties 2Consider the reaction shown here occurring at \(25^{\circ} \mathrm{C}\). \(\mathrm{Cr}(\mathrm{s})+\mathrm{Cd}^{2+}(a q) \longrightarrow \mathrm{Cr}^{2+}(a q)+\mathrm{Cd}(\mathrm{s})\) Determine\(\mathrm{E}_{\text {cell }}^{\circ}\) K, and \(\Delta G_{\mathrm{rxn}}^{\circ}\) for the reaction and complete the table. Text Transcription: E_cell degree deltaG_rxn degree 25 degree C Cr(s) + Cd^2+(aq) rightarrow Cr^2+(aq) + Cd(s)
Read more -
Chapter 19: Problem 109 Chemistry: Structure and Properties 2A friend wants you to invest in a new battery she has designed that produces 24 V in a single voltaic cell. Why should you be wary of investing in such a battery?
Read more -
Chapter 19: Problem 110 Chemistry: Structure and Properties 2What voltage can theoretically be achieved in a battery in which lithium metal is oxidized and fluorine gas is reduced? Why might such a battery be difficult to produce?
Read more -
Chapter 19: Problem 111 Chemistry: Structure and Properties 2A battery relies on the oxidation of magnesium and the reduction of \(\mathrm{Cu}^{2+}\). The initial concentrations of \(\mathrm{Mg}^{2+}\) and \(\mathrm{Cu}^{2+}\) are \(1.0 \times 10^{-4} \mathrm{M}\) and 1.5 M, respectively, in 1.0-liter half-cells. a. What is the initial voltage of the battery? b. What is the voltage of the battery after delivering 5.0 A for 8.0 h? c. How long can the battery deliver 5.0 A before going dead? Text Transcription: Cu^2+ Mg^2+ Cu^2+ 1.0 x 10^-4 M
Read more -
Chapter 19: Problem 112 Chemistry: Structure and Properties 2A rechargeable battery is constructed based on a concentration cell constructed of two \(\mathrm{Ag} / \mathrm{Ag}^{+}\) half-cells. The volume of each half-cell is 2.0 L, and the concentrations of \(\mathrm{Ag}^{+}\) in the half-cells are 1.25 M and \(1.0 \times 10^{-3} \mathrm{M}\). a. How long can this battery deliver 2.5 A of current before it dies? b. What mass of silver is plated onto the cathode by running at 3.5 A for 5.5 h? c. Upon recharging, how long would it take to redissolve \(1.00 \times 10^{2} \mathrm{~g}\) of silver at a charging current of 10.0 amps? Text Transcription: Ag/Ag^+ Ag^+ 1.0 x 10^-3 M 1.00 x 10^2 g
Read more -
Chapter 19: Problem 113 Chemistry: Structure and Properties 2If a water electrolysis cell operates at a current of 7.8 A, how long will it take to generate 25.0 L of hydrogen gas at a pressure of 25.0 atm and a temperature of \(25^{\circ} \mathrm{C}\)? Text Transcription: 25 degree C
Read more -
Chapter 19: Problem 114 Chemistry: Structure and Properties 2One type of breathalyzer employs a fuel cell to measure the quantity of alcohol in the breath. When a suspect blows into the breathalyzer, ethyl alcohol is oxidized to acetic acid at the anode: At the cathode, oxygen is reduced: \(\mathrm{O}_{2}(g)+2 \mathrm{H}_{2} \mathrm{O}(l)+4 \mathrm{e}^{-} \longrightarrow 4 \mathrm{OH}^{-}(a q)\) The overall reaction is the oxidation of ethyl alcohol to acetic acid and water. When a suspected drunk driver blows 188 mL of his breath through this breathalyzer, the breathalyzer produces an average of 324 mA of current for 10 s. Assuming a pressure of 1.0 atm and a temperature of \(25^{\circ} \mathrm{C}\) what percent (by volume) of the driver’s breath is ethanol? Text Transcription: 25 degree C O_2(g) + 2 H_2O(l) + 4 e^- rightarrow 4 OH^-(aq)
Read more -
Chapter 19: Problem 115 Chemistry: Structure and Properties 2The \(K_{\mathrm{sp}}\) of CuI is \(1.1 \times 10^{-12}\). Find \(E_{\text {cell }}\) for the cell: \(\mathrm{Cu}(s)|\mathrm{CuI}(s)| \mathrm{I}^{-}(a q)(1.0 \mathrm{M}) \| \mathrm{Cu}^{+}(a q)(1.0 \mathrm{M}) \mid \mathrm{Cu}(s)\) Text Transcription: K_sp 1.1 x 10^-12 E_cell Cu(s) | CuI(s) | I^-(aq)(1.0 M) || Cu^+(aq)(1.0 M) Cu(s)
Read more -
Chapter 19: Problem 116 Chemistry: Structure and Properties 2The \(K_{\mathrm{sp}}\) of \(\mathrm{Zn}(\mathrm{OH})_{2}\) is \(1.8 \times 10^{-14}\). Find \(E_{\text {cell }}\) for the half-reaction: \(\mathrm{Zn}(\mathrm{OH})_{2}(s)+2 \mathrm{e}^{-} \rightleftharpoons \mathrm{Zn}(s)+2 \mathrm{OH}^{-}(a q)\) Text Transcription: K_sp Zn(OH)_2 1.8 x 10^-14 E_cell Zn(OH)_2(s) + 2 e^- rightleftharpoons Zn(s) + 2 OH^-(aq)
Read more -
Chapter 19: Problem 117 Chemistry: Structure and Properties 2Calculate \(\Delta G_{\mathrm{rxn}}^{\circ}\) and K for each reaction. a. The disproportionation of \(\mathrm{Mn}^{2+}(a q)\) to Mn(s) and \(\operatorname{MnO}_{2}(s)\) in acid solution at \(25^{\circ} \mathrm{C}\). b. The disproportionation of \(\operatorname{MnO}_{2}(s)\) to \(\mathrm{Mn}^{2+}(a q)\) and \(\mathrm{MnO}_{4}^{-}(a q)\) in acid solution at \(25^{\circ} \mathrm{C}\). Text Transcription: deltaG_rxn degree Mn^2+(aq) Mn^2+(aq) MnO_2(s) MnO_2(s) 25 degree C 25 degree C MnO_4^-(aq)
Read more -
Chapter 19: Problem 128 Chemistry: Structure and Properties 2A voltaic cell designed to measure \(\left[\mathrm{Cu}^{2+}\right]\) is constructed of a standard hydrogen electrode and a copper metal electrode in the \(\mathrm{Cu}^{2+}\) solution of interest. If you want to construct a calibration curve for how the cell potential varies with the concentration of copper(II), what do you plot in order to obtain a straight line? What is the slope of the line? Text Transcription: [Cu^2+] Cu^2+
Read more -
Chapter 19: Problem 129 Chemistry: Structure and Properties 2The surface area of an object to be gold plated is \(49.8 \mathrm{~cm}^{2}\), and the density of gold is \(19.3 \mathrm{g} / \mathrm{cm}^{3}\). A current of 3.25 A is applied to a solution that contains gold in the +3 oxidation state. Calculate the time required to deposit an even layer of gold \(1.00 \times 10^{-3} \mathrm{cm}\) thick on the object. Text Transcription: 19.3 g/cm^3 49.8 cm^2 1.00 x 10^-3 cm
Read more -
Chapter 19: Problem 130 Chemistry: Structure and Properties 2Electrodepositing all the Cu and Cd from a solution of \(\mathrm{CuSO}_{4}\) and \(\mathrm{CdSO}_{4}\) required 1.20 F of electricity \(\left(1 \mathrm{F}=1 \mathrm{mol} \mathrm{e}^{-}\right)\). The mixture of Cu and Cd that was deposited had a mass of 50.36 g. What mass of \(\mathrm{CuSO}_{4}\) was present in the original mixture? Text Transcription: CuSO_4 CdSO_4 CuSO_4 (1F = 1 mol e^-)
Read more -
Chapter 19: Problem 131 Chemistry: Structure and Properties 2Sodium oxalate, \(\mathrm{Na}_{2} \mathrm{C}_{2} \mathrm{O}_{4}\), in solution is oxidized to \(\mathrm{CO}_{2}(g)\) by \(\mathrm{MnO}_{4}{ }^{-}\), which is reduced to \(\mathrm{Mn}^{2+}\). A 50.1-mL volume of a solution of \(\mathrm{MnO}_{4}{ }^{-}\) is required to titrate a 0.339 g sample of sodium oxalate. This solution of \(\mathrm{MnO}_{4}{ }^{-}\) is used to analyze uranium-containing samples. A 4.62-g sample of a uranium-containing material requires 32.5 mL of the solution for titration. The oxidation of the uranium can be represented by the change \(\mathrm{UO}^{2+} \longrightarrow \mathrm{UO}_{2}^{2+}\). Calculate the percentage of uranium in the sample. Text Transcription: Na_2C_2O_4 CO_2(g) MnO_4^- Mn^2+ MnO_4^- MnO_4^- UO2+ rightarrow UO2^2+
Read more -
Chapter 19: Problem 132 Chemistry: Structure and Properties 2Three electrolytic cells are connected in a series. The electrolytes in the cells are aqueous copper(II) sulfate, gold(III) sulfate, and silver nitrate. A current of 2.33 A is applied, and after some time 1.74 g Cu is deposited. How long was the current applied? What mass of gold and silver was deposited?
Read more -
Chapter 19: Problem 133 Chemistry: Structure and Properties 2The cell \(\operatorname{Pt}(s) \mid \mathrm{Cu}^{+}(1 \mathrm{M})\), \(\mathrm{Cu}^{2+}(1 \mathrm{M}) \| \mathrm{Cu}^{+}(1 \mathrm{M}) \mid \mathrm{Cu}(\mathrm{s})\) has \(\mathrm{E}_{\mathrm{cell}}^{\circ}=0.364 \mathrm{V}\). The cell \(\mathrm{Cu}(\mathrm{s})\left|\mathrm{Cu}^{2+}(1 \mathrm{M}) \| \mathrm{Cu}^{+1}(1 \mathrm{M})\right| \mathrm{Cu}(\mathrm{s})\) has \(\mathrm{E}_{\mathrm{cell}}^{\circ}=0.182 \mathrm{V}\). Write the cell reaction for each cell and explain the differences in \(\mathrm{E}_{\text {cell }}^{\circ}\)l. Calculate \(\Delta G^{\circ}\) for each cell reaction to help explain these differences. Text Transcription: Pt(s) | Cu+(1 M) Cu^2+(1 M) || Cu+(1 M) | Cu(s) E_cell degree = 0.364 V Cu(s) | Cu2+(1 M) || Cu+1(1 M) | Cu(s) E_cell degreel = 0.182 V E_cell degree deltaG degree
Read more -
Chapter 19: Problem 134 Chemistry: Structure and Properties 2An electrochemical cell has a positive standard cell potential but a negative cell potential. Which statement is true? a. K 7 1; Q 7 K b. K 6 1; Q 7 K c. K 7 1; Q 6 K d. K 6 1; Q 6 K
Read more -
Chapter 19: Problem 135 Chemistry: Structure and Properties 2Which oxidizing agent oxidizes \(\mathrm{Br}^{-}\) but not \(\mathrm{Cl}^{-}\)? a. \(\mathrm{K}_{2} \mathrm{Cr}_{2} \mathrm{O}_{7}\) (in acid) b. \(\mathrm{KMnO}_{4}\) (in acid) c. \(\mathrm{HNO}_{3}\) Text Transcription: Br^- Cl^- K_2Cr_2O_7 KMnO_4 HNO_3
Read more -
Chapter 19: Problem 136 Chemistry: Structure and Properties 2A redox reaction employed in an electrochemical cell has a negative \(\Delta G_{\mathrm{rxn}}^{\circ}\). Which statement is true? a. \(E_{\text {cell }}^{\circ}\) is positive; K 6 1 b. \(E_{\text {cell }}^{\circ}\) is negative; K 7 1 c. \(E_{\text {cell }}^{\circ}\) is negative; K 7 1 d. \(E_{\text {cell }}^{\circ}\) is positive; K 6 1 Text Transcription: deltaG_rxn degree E_cell degree E_cell degree E_cell degree E_cell degree
Read more -
Chapter 19: Problem 137 Chemistry: Structure and Properties 2A redox reaction has an equilibrium constant of K = 0.055. What is true of \(\Delta G_{\mathrm{rxn}}^{\circ}\) and \(E_{\text {cell }}^{\circ}\) for this reaction? Text Transcription: deltaG_rxn degree E_cell degree
Read more -
Chapter 19: Problem 138 Chemistry: Structure and Properties 2Discuss these questions with the group and record your consensus answer. Balance the redox reactions by following the steps in the text. Rotate through the group, having each group member do the next step in the process and explaining that step to the rest of the group. a. \(\\mathrm{I}_{2}(\mathrm{s})+\mathrm{Fe}(\mathrm{s}) \longrightarrow \mathrm{FeI}_{2}(\mathrm{s})) b. \(\mathrm{Cl}_{2}(g)+\mathrm{H}_{2} \mathrm{O}_{2}(a q) \longrightarrow \mathrm{Cl}^{-}(a q)+\mathrm{O}_{2}(g)\) (acidic) c. \(\mathrm{Hg}^{2+}(a q)+\mathrm{H}_{2}(g) \longrightarrow \mathrm{Hg}(l)+\mathrm{H}_{2} \mathrm{O}(l)\) (basic) d. \(\mathrm{CH}_{3} \mathrm{OH}(l)+\mathrm{O}_{2}(g) \longrightarrow \mathrm{CO}_{2}(g)+\mathrm{H}_{2} \mathrm{O}(l)\) (acidic) Text Transcription: I_2(s) + Fe(s) rightarrow FeI_2(s) Cl_2(g) + H_2O_2(aq) rightarrow Cl^-(aq) + O_2(g) (acidic) Hg^2+(aq) + H_2(g) rightarrow Hg(l) + H_2O(l) (basic) CH_3OH(l) + O_2(g) rightarrow CO_2(g) + H_2O(l) (acidic)
Read more -
Chapter 19: Problem 139 Chemistry: Structure and Properties 2Discuss these questions with the group and record your consensus answer. Have each group member select a half-reaction from Table 19.1. Each member should calculate the standard cell potential of an electrochemical cell formed between each member’s half-reaction and the half-reaction of each of the other group members. For each pair of half-reactions, write the overall balanced chemical reaction that is spontaneous.
Read more -
Chapter 19: Problem 140 Chemistry: Structure and Properties 2Discuss these questions with the group and record your consensus answer. Calculate \(\Delta G^{\circ}\) and K for each reaction the group created in Question 139. For one of the reactions, explain how the sign or magnitude of each quantity (\(\mathrm{E}_{\text {cell }}^{0}\), \(\Delta G^{\circ}\), and K) is consistent with the fact that the reaction is spontaneous in the direction written. Text Transcription: deltaG degree E_cell degree deltaG degree
Read more -
Chapter 19: Problem 141 Chemistry: Structure and Properties 2Design a device that uses an electrochemical cell to determine the amount of \(\mathrm{Cu}^{2+}\) in a sample of water. Describe, in detail, the construction and the theory of operation of your device. If you are able to measure voltage with one-millivolt accuracy, what will be the uncertainty in your measured concentration? Text Transcription: Cu^2+
Read more -
Chapter 19: Problem 142 Chemistry: Structure and Properties 2Using a library or the Internet, research a fuel cell that uses methanol for fuel. What is the reaction at the anode? What is the reaction at the cathode? What is the overall reaction? What is the standard cell potential? How many kWh can it generate from 1 L (0.792 kg) of methanol?
Read more -
Chapter 19: Problem 143 Chemistry: Structure and Properties 2In this chapter, you have seen that the voltage of an electrochemical cell is sensitive to the concentrations of the reactants and products in the cell. As a result, electrochemical cells can be used to measure the concentrations of certain species in solution. For example, the voltage of an electrochemical cell based on the reaction \(\mathrm{H}_{2}(g)+\mathrm{Cu}^{2+}(a q) \longrightarrow 2 \mathrm{H}^{+}+\mathrm{Cu}(s)\) is sensitive to both the \(\mathrm{Cu}^{2+}\) concentration and the \(\mathrm{H}^{+}\) concentration in solution. If the \(\mathrm{H}^{+}\) concentration is held constant, then the voltage only depends on the \(\mathrm{Cu}^{2+}\) concentration, and we can use the cell to measure the \(\mathrm{Cu}^{2+}\) concentration in an unknown solution. The tabulated data show the measured voltage in the hydrogen/copper electrochemical cell just discussed for several \(\mathrm{Cu}^{2+}\) concentrations. Examine the data and answer the questions that follow. a. Construct a graph of the measured voltage versus the copper concentration. Is the graph linear? b. Determine how you might manipulate the data to produce a linear graph. (Hint: See the Nernst equation.) c. Reconstruct a graph of the data using the method to produce a linear graph from part b. Determine the slope and y-intercept of the best-fitting line to the points in your graph. Could you have predicted the slope and intercept from the Nernst equation? d. The voltage of two unknown solutions are measured and recorded. Use the slope and intercept from part c to determine the \(\mathrm{Cu}^{2+}\) concentrations of the unknown solutions. Text Transcription: Cu^2+ Cu^2+ Cu^2+ Cu^2+ H^+ H^+ H_2(g) + Cu^2+(aq) rightarrow 2 H^+ + Cu(s)
Read more