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Electrochemistry. The transfer of electrons provides a means for converting chemical energy to electrical energy, or vice versa. The study of the relationship between electricity and chemical reactions is called electrochemistry. Electrochemical reactions are oxidation
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Electrochemistry • The transfer of electrons provides a means for converting chemical energy to electrical energy, or vice versa. • The study of the relationship between electricity and chemical reactions is called electrochemistry. • Electrochemical reactions are oxidation -reduction reactions. In redox reactions, electrons are transferred from one species (the reductant) to another (the oxidant). • The two parts of the reaction are physically separated. • The oxidation reaction occurs at the anode. • The reduction reaction occurs at the cathode.
Balancing Redox Reactions - The Half-Reaction Method Half reaction method rules: • Write the unbalanced reaction. • Break the reaction into 2 half reactions: • One oxidation half-reaction and • One reduction half-reaction Each reaction must have complete formulas for molecules and ions. • Mass balance each half reaction by adding appropriate stoichiometric coefficients. To balance H and O we can add: • H+ or H2O in acidic solutions. • OH- or H2O in basic solutions. • Charge balance the half reactions by adding appropriate numbers of electrons. • Electrons will be products in the oxidation half-reaction. • Electrons will be reactants in the reduction half-reaction. • Multiply each half reaction by a number to make the number of electrons in the oxidation half-reaction equal to the number of electrons reduction half-reaction. • Add the two half reactions. • Eliminate any common terms and reduce coefficients to smallest whole numbers.
The Half-Reaction Method • Tin (II) ions are oxidized to tin (IV) by bromine. Use the half reaction method to write and balance the net ionic equation.
The Half-Reaction Method • Dichromate ions oxidize iron (II) ions to iron (III) ions and are reduced to chromium (III) ions in acidic solution. Write and balance the net ionic equation for the reaction.
The Half-Reaction Method • In basic solution hydrogen peroxide oxidizes chromite ions, Cr(OH)4-, to chromate ions, CrO42-. The hydrogen peroxide is reduced to hydroxide ions. Write and balance the net ionic equation for this reaction.
The Half-Reaction Method • When chlorine is bubbled into basic solution, it forms hypochlorite ions and chloride ions. Write and balance the net ionic equation. • This is a disproportionation redox reaction. The same species, in this case Cl2, is both reduced and oxidized.
Stoichiometry of Redox Reactions • Just as we have done stoichiometry with acid-base reactions, it can also be done with redox reactions. • What volume of 0.200 M KMnO4 is required to oxidize 35.0 mL of 0.150 M HCl? The balanced reaction is:
Stoichiometry of Redox Reactions • A volume of 40.0 mL of iron (II) sulfate is oxidized to iron (III) by 20.0 mL of 0.100 M potassium dichromate solution. Calculate the concentration of the iron (II) sulfate solution. The balanced equation is:
Electrochemistry • There are two kinds electrochemical cells. • Electrochemical cells containing nonspontaneous chemical reactions are called electrolytic cells. • Electrochemical cells containing spontaneous chemical reactions are called voltaic or galvanic cells. • Galvanic cell (voltaic cell)— energy released during a spontaneous reaction (G < 0) generates electricity • Electrolytic cell—consumes electrical energy from an external source to cause a nonspontaneous redox reaction to occur (G > 0) • The cathode is negative in electrolytic cells and positive in voltaic cells. • The anode is positive in electrolytic cells and negative in voltaic cells.
Electrochemistry – Both types of cells contain two electrodes connected to an external circuit that provides an electrical connection between systems. Metallic Conduction. – When circuit is closed, electrons flow from the anode to the cathode; electrodes are connected by an electrolyte, which is an ionic substance or solution that allows ions to transfer between the electrodes, thereby maintaining the system’s electrical neutrality. Ionic Conduction.
Electrochemistry • In all voltaic cells, electrons flow spontaneously from the negative electrode (anode) to the positive electrode (cathode). • Voltaic cells consist of two half-cells which contain the oxidized and reduced forms of an element (or other chemical species) in contact with each other. • Cell halves are physically separated so that electrons (from redox reaction) are forced to travel through wires; creating a potential difference. • A simple half-cell consists of: • A piece of metal immersed in a solution of its ions. • A wire to connect the two half-cells. • And a salt bridge to • complete the circuit, • maintain neutrality, and • prevent solution mixing.
Standard Potentials Electrochemistry • In a voltaic cell, current is produced when electrons flow externally through the circuit from the anode to the cathode because of a difference in potential energy between two electrodes in the electrochemical cell • The flow of electrons in an electrochemical cell depends on • The identity of the reacting substances, • The difference in the potential energy of their valence electrons • The concentrations of the reacting species, and • The temperature of the system • The potential of the cell under standard conditions (1 M soln, 1 atm for gases, or a pure solids, or liquid) at 25ºC is called the standard cell potential, Eºcell. • All Eº values are independent of the stoichiometric coefficients for the half-reactions.
Constructing a Cell Diagram Electrochemistry • Because voltaic cells are cumbersome to describe in words, a line notation called a cell diagram has been developed • In a cell diagram • the identity of the electrodes and the chemical contents of the compartments are indicated by their chemical formulas, with the anode written on the far left and the cathode on the far right; • phase boundaries are shown by single vertical lines; • the salt bridge, which has two phase boundaries, is shown by a double vertical line; Here’s a cell diagram for Zn/Cu cell: Zn(s)| Zn2+(aq, 1M) || Cu2+(aq, 1 M) | Cu(s) AnodeSaltBridgeCathode
The Zinc-Copper Cell • Cell components for the Zn-Cu cell are: • A metallic Cu strip immersed in 1.0 M copper (II) sulfate. • A metallic Zn strip immersed in 1.0 M zinc (II) sulfate. • A wire and a salt bridge to complete circuit • The cell’s initial voltage is 1.100 volts
Calculating Standard Cell Potentials Electrochemistry • The standard cell potential for a redox reaction, Eºcell, is a measure of the tendency of the reactants in their standard states to form the products in their standard states—it is a measure of the driving force for the reaction (voltage) • The standard cell potential is the reduction potential of the reductive half-reaction minus the reduction potential of the oxidative half-reaction (Eºcell= Eºcathode– Eºanode). • Calculations for the standard potential for the Zn/Cu cell represented by the cell diagram: Zn(s) | Zn2+(aq, 1 M) || Cu2+(aq, 1M) | Cu(s) Cathode: Cu2+(aq) + 2e– Cu(s)Eºcathode= 0.34 V Anode: Zn(s) Zn2+(aq, 1M) + 2e– Eºanode= + 0.76 V Overall: Zn(s) + Cu2+(aq) Zn2+(aq) + Cu(s) Eºcell= Eºcathode– Eºanode= 1.10 V
The Copper - Silver Cell • Cell components: • A Cu strip immersed in 1.0 M copper (II) sulfate. • A Ag strip immersed in 1.0 M silver (I) nitrate. • A wire and a salt bridge to complete the circuit. • The initial cell voltage is 0.46 volts.
The Copper - Silver Cell • Calculations for the standard potential for the Zn/Cu cell represented by the cell diagram: Cu(s) | Cu2+(aq, 1 M) || Ag+(aq, 1M) | Ag(s) Cathode: 2Ag+(aq) + 2e– 2Ag(s)Eºcathode= 0.80 V Anode: Cu(s) Cu2+(aq, 1M) + 2e– Eºanode= – 0.34 V Overall: 2Ag(s)+Cu2+(aq) 2Ag+(aq)+Cu(s) Eºcell= Eºcathode– Eºanode= 0.46 V • Compare the Zn-Cu cell to the Cu-Ag cell • The Cu electrode is the cathode in the Zn-Cu cell. • The Cu electrode is the anode in the Cu-Ag cell. • Whether a particular electrode behaves as an anode or as a cathode depends on what the other electrode of the cell is.
Electrochemistry • These experimental facts demonstrate that Cu2+ is a stronger oxidizing agent than Zn2+. • In other words Cu2+ oxidizes metallic Zn to Zn2+. • Similarly, Ag+ is is a stronger oxidizing agent than Cu2+. • Because Ag+ oxidizes metallic Cu to Cu 2+. • If we arrange these species in order of increasing strengths, we see that:
Electrochemistry • Because the half-reactions in the table are arranged in order of their Eº values, the table can be used to predict the relative strengths of various oxidants and reductants • Any species on the left side of a half-reaction will spontaneously oxidize any species on the right side of another half-reaction that lies below it • Any species on the right side of one half-reaction will spontaneously reduce any species on the left side of another half-reaction that lies above it Easiest to reduce is Strongest Oxidizing Agent Ag + Cu 2+ Zn 2+ (find order using left hand side of table) Least likely to be reduced is Strongest Reducing Agent Zn Cu Ag (find order using right hand side of table)
Electrochemistry • To measure relative electrode potentials, we must establish an arbitrary standard. • That standard is the Standard Hydrogen Electrode (SHE). • The SHE is assigned an arbitrary voltage of 0.000000… V • The potential of a half-reaction measured against the SHE under standard conditions is called the standardelectrode potential for that half-reaction. Standard hydrogen electrode (SHE) — consists of a strip of platinum wire in contact with an aqueous solution containing 1 M H+,which is in equilibrium with H2 gas at apressure of 1 atm at the Pt-solution interface
Uses of Standard Electrode Potentials • Electrodes that force the SHE to act as an anode are assigned positive standard reduction potentials. • Electrodes that force the SHE to act as the cathode are assigned negative standard reduction potentials. • Standard electrode (reduction) potentials tell us the tendencies of half-reactions to occur as written. • For example, the half-reaction for the standard potassium electrode is:
The Zinc-SHE Cell • For this cell the components are: • A Zn strip immersed in 1.0 M zinc (II) sulfate. • The other electrode is the Standard Hydrogen Electrode. • A wire and a salt bridge to complete the circuit. • The initial cell voltage is 0.76 volts.
The Zinc-SHE Cell • Calculations for the standard potential for the Zn/Cu cell represented by the cell diagram: Zn(s) | Zn2+(aq, 1 M) || H+(aq, 1M) | H2(g) Cathode: 2H+(aq) + 2e– H2(g)Eºcathode= 0.00 V Anode: Zn(s) Zn2+(aq, 1M) + 2e– Eºanode= + 0.76 V Overall: Zn(s)+ H+(aq) H2(g)+ Zn(s) Eºcell= 0.76 V Eºcell= Eºcathode– Eºanode= 0.00 – (–.76) = 0.76 V • The cathode is the Standard Hydrogen Electrode. • In other words Zn reduces H+ to H2. • The anode is Zn metal. • Zn metal is oxidized to Zn2+ ions.
The Copper-SHE Cell • The cell components are: • A Cu strip immersed in 1.0 M copper (II) sulfate. • The other electrode is a Standard Hydrogen Electrode. • A wire and a salt bridge to complete the circuit. • The initial cell voltage is 0.34 volts.
The Copper-SHE Cell • Calculations for the standard potential for the Zn/Cu cell represented by the cell diagram: Cu(s) | Cu2+(aq, 1 M) || H+(aq, 1M) | H2(g) Cathode: 2H+(aq) + 2e– H2(g)Eºcathode= 0.00 V Anode: Cu(s) Cu2+(aq, 1M) + 2e– Eºanode= + 0.34 V Overall: Cu(s)+ 2H2+(aq) H2(g) + Cu(s) Eºcell= 0.34 V Eºcell= Eºcathode– Eºanode= 0.00 – (–.34) = 0.34 V • In this cell the SHE is the anode • The Cu2+ ions oxidize H2 to H+. • The Cu is the cathode. • The Cu2+ ions are reduced to Cu metal.
Uses of Standard Electrode Potentials • Use standard electrode potentials to predict whether an electrochemical reaction at standard state conditions will occur spontaneously. • In solution, will aqueous dichromate ions, Cr2O72-, oxidize aqueous I- ions to aqueous iodine, I2, or will aqueous I- ions oxidize aqueous Cr3+ to aqueous dichromate ions, Cr2O72-? • Steps for obtaining the equation for the spontaneous reaction. Choose the appropriate half-reactions from a table of standard reduction potentials. Write the equation for the half-reaction with the more positive E0 value first, along with its E0 value. Write the equation for the other half-reaction as an oxidation with its oxidation potential, i.e. reverse the tabulated reduction half-reaction and change the sign of the tabulated E0. Balance the electron transfer. Add the reduction and oxidation half-reactions and their potentials. This produces the equation for the reaction for which E0cell is positive, which indicates that the forward reaction is spontaneous. Remember potentials are work functions and are not stoichiometric.
Electrode Potentials for Other Half-Reactions • Will permanganate ions, MnO4-, oxidize iron (II) ions to iron (III) ions, or will iron (III) ions oxidize manganese(II) ions to permanganate ions in acidic solution? • Follow the steps outlined in the previous slides. • Note that E0 values are not multiplied by any stoichiometric relationships in this procedure.
Electrode Potentials for Other Half-Reactions • Will nitric acid, HNO3, oxidize arsenous acid, H3AsO3, in acidic solution? The reduction product of HNO3 is NO in this reaction.
The Effect of Concentration on Cell Potential: The Nernst Equation • Standard electrode potentials, those compiled in appendices, are determined at thermodynamic standard conditions. • Reminder of standard conditions.
The Nernst Equation • The value of the cell potentials change if conditions are nonstandard. • The Nernst equation describes the electrode potentials at nonstandard conditions. • The Nernst equation is: • Substitution of the values of the constants into the Nernst equation at 25o C gives: • For this half-reaction: • The corresponding Nernst equation is:
The Nernst Equation If [Cu2+] and [Cu+] are both 1.0 M, i.e. at standard conditions, then E = E0 because the concentration term equals zero. Substituting E0 into the above expression gives:
The Nernst Equation • Calculate the potential for the Cu2+/ Cu+ electrode at 250C when the concentration of Cu+ ions is three times that of Cu2+ ions.
The Nernst Equation Calculate the potential for the Cu2+/Cu+ electrode at 250C when the Cu+ ion concentration is 1/3 of the Cu2+ ion concentration.
The Nernst Equation • Calculate the electrode potential for a hydrogen electrode in which the [H+] is 1.0 x 10-3M and the H2 pressure is 0.50 atmosphere.
The Nernst Equation • The Nernst equation can also be used to calculate the potential for a cell that consists of two nonstandardelectrodes. • Calculate the initial potential of a cell that consists of an Fe3+/Fe2+ electrode in which [Fe3+]=1.0 x 10-2M and [Fe2+]=0.1 M connected to a Sn4+/Sn2+ electrode in which [Sn4+]=1.0 M and [Sn2+]=0.10 M . A wire and salt bridge complete the circuit.
The Nernst Equation • Calculate the E0 cell by the usual procedure.
Counting Electrons: Coulometryand Faraday’s Law of Electrolysis • A coulomb is the amount of charge that passes a given point when a current of one ampere (A) flows for one second. Charge (C) = current (A) * time (s) 1 amp = 1 coulomb/second • Faraday’s Law states that during electrolysis, one faraday of electricity (96,487 coulombs) reduces and oxidizes, respectively, one equivalent of the oxidizing agent and the reducing agent. • This corresponds to the passage of one mole of electrons through the electrolytic cell.
Counting Electrons: Coulometryand Faraday’s Law of Electrolysis • The amount of material consumed or produced in a reaction can be calculated from the stoichiometry of an electrolysis reaction, the amount of current passed, and the duration of the electrolytic reaction. Calculate the mass of palladium produced by the reduction of palladium (II) ions during the passage of 3.20 amperes of current through a solution of palladium (II) sulfate for 30.0 minutes. Charge (Coulombs) = current (Amperes) * time (sec) moles e– = charge (Coulombs) . 96,486 Coulombs /moles e- Moles Pd2+ : moles of electrons
Counting Electrons: Coulometry and Faraday’s Law of Electrolysis • Calculate the volume of oxygen (measured at STP) produced by the oxidation of water in the previous example.
Commercial Galvanic Cells Electrochemistry • Galvanic cells can be self-contained and portable and can be used as batteries and fuel cells • A battery (storage cell) is a galvanic cell (or a series of galvanic cells) that contains all the reactants needed to produce electricity. • A fuel cell is a galvanic cell that requires a constant external supply of one or more reactants in order to generate electricity.
Electrochemistry • Two basic kinds of batteries 1. Disposable, or primary, batteries in which the electrode reactions are effectively irreversible and which cannot be recharged 2. Rechargeable, or secondary, batteries, which form an insoluble product that adheres to the electrodes; can be recharged by applying an electrical potential in the reverse direction, which temporarily converts a rechargeable battery from a galvanic cell to an electrolytic cell • Major difference between batteries and galvanic cells is that commercial batteries use solids or pastes rather than solutions as reactants to maximize the electrical output per unit mass
The Dry Cell • One example of a dry cell is flashlight and radio batteries. • The cell’s container is made of zinc which acts as an electrode. • A graphite rod is in the center of the cell which acts as the other electrode. • The space between the electrodes is filled with a mixture of: • ammonium chloride, NH4Cl • manganese (IV) oxide, MnO2 • zinc chloride, ZnCl2 • and a porous inactive solid.
Secondary Voltaic Cells • Secondary cells are reversible, rechargeable. • The electrodes in a secondary cell can be regenerated by the addition of electricity. • These cells can be switched from voltaic to electrolytic cells. • One example of a secondary voltaic cell is the lead storage or car battery. The Lead Storage Battery • In the lead storage battery the electrodes are two sets of lead alloy grids (plates). • Holes in one of the grids are filled with lead (IV) oxide, PbO2. • The other holes are filled with spongy lead. • The electrolyte is dilute sulfuric acid.
The Lead Storage Battery • Provides the starting power in automobiles and boats; can be discharged and recharged many times • The Lead Acid Storage Battery is an example of a very successful recylcing program. • The anodes in each cell of this rechargeable battery are plates or grids of lead containing spongy lead metal, while the cathodes are similar grids containing powdered lead dioxide, PbO2 • The electrolyte is an aqueous solution of • sulfuric acid • The value of Eº for such a cell is 2 V; • connecting three cells in series produces • a 6-V battery, and a typical 12-V car • battery contains six of these cells • connected in series.
The Lead Storage Battery • Diagram of the lead storage battery.
Batteries • Lithium-iodine battery • Water-free battery • Consists of two cells separated by a metallic nickel mesh that collects charge from the anodes • The anode is lithium metal, and the cathode is a solid complex of 2 • Electrolyte is a layer of solid Li that allows Li+ ions to diffuse from the cathode to the anode • Highly reliable and long-lived • Used in cardiac pacemakers, medical implants, smoke alarms, and in computers • Disposable
The Nickel-Cadmium (Nicad) Cell • Nicad batteries are the rechargeable cells used in calculators, cameras, watches, etc. • A water-based cell with a cadmium anode and a highly oxidized nickel cathode • This design maximizes the surface area of the electrodes and minimizes the distance between them, which gives the battery both a high discharge current and a high capacity • Lightweight, rechargeable, and high capacity but tend to lose capacity quickly and do not store well; also presents disposal problems because of the toxicity of cadmium
Fuel Cells • A galvanic cell that requires an external supply of reactants because the products of the reaction are continuously removed • Does not store electrical energy but allows electrical energy to be extracted directly from a chemical reaction • Have reliability problems and are costly • Used in space vehicles • Hydrogen is oxidized at the anode. • Oxygen is reduced at the cathode.