1. © 2012 Pearson Education, Inc. Chapter 8 Basic Concepts of Chemical Bonding Subhash C. Goel South GA College Douglas, GA Lecture Presentation

2. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Chemical Bonds Three basic types of bonds  Ionic Electrostatic attraction between ions.  Covalent Sharing of electrons.  Metallic Metal atoms bonded to several other atoms.

3. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Lewis Symbols G.N. Lewis pioneered the use of chemical symbols surrounded with dots to symbolize the valence electrons around an atom. When forming compounds, atoms tend to add or subtract electrons until they are surrounded by eight valence electrons (the octet rule).

4. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc.

5. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Ionic Bonding Na(s) + ½ Cl 2 (g) → NaCl(s)∆H f o = -410.9 kJ

6. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Energetics of Ionic Bonding As we saw in the last chapter, it takes 496 kJ/mol to remove electrons from sodium.

7. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Energetics of Ionic Bonding We get 349 kJ/mol back by giving electrons to chlorine. Sum of IE + EA = 496-349 = 147 kJ But these numbers don’t explain why the reaction of sodium metal and chlorine gas to form sodium chloride is so exothermic!

8. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Energetics of Ionic Bonding There must be a third piece to the puzzle. What is as yet unaccounted for is the electrostatic attraction between the newly formed sodium cation and chloride anion.

9. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Lattice Energy This third piece of the puzzle is the lattice energy:  The energy required to completely separate a mole of a solid ionic compound into its gaseous ions. The energy associated with electrostatic interactions is governed by Coulomb’s law: E el =  Q1Q2dQ1Q2d

10. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Lattice Energy Lattice energy, then, increases with the charge on the ions. It also increases with decreasing size of ions.

11. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc.

12. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Energetics of Ionic Bonding By accounting for all three energies (ionization energy, electron affinity, and lattice energy), we can get a good idea of the energetics involved in such a process.

13. © 2012 Pearson Education, Inc. Chemistry, The Central Science, 12th Edition Theodore L. Brown; H. Eugene LeMay, Jr.; Bruce E. Bursten; Catherine J. Murphy; and Patrick Woodward Sample Exercise 8.1 Magnitudes of Lattice Energies Solution Solve NaF consists of Na + and F – ions, CsI of Cs + and I – ions, and CaO of Ca 2+ and O 2– ions. Because the product Q 1 Q 2 appears in the numerator of Equation 8.4, the lattice energy increases dramatically when the charges increase. Thus, we expect the lattice energy of CaO, which has 2+ and 2– ions, to be the greatest of the three. The ionic charges are the same in NaF and CsI. As a result, the difference in their lattice energies depends on the difference in the distance between ions in the lattice. Because ionic size increases as we go down a group in the periodic table we know that Cs + is larger than Na + and I – is larger than F –. Therefore, the distance between Na + and F – ions in NaF is less than the distance between the Cs + and I – ions in CsI. As a result, the lattice energy of NaF should be greater than that of CsI. In order of increasing energy, therefore, we have CsI < NaF < CaO. Without consulting Table 8.2, arrange the ionic compounds NaF, CsI, and CaO in order of increasing lattice energy.

14. © 2012 Pearson Education, Inc. Chemistry, The Central Science, 12th Edition Theodore L. Brown; H. Eugene LeMay, Jr.; Bruce E. Bursten; Catherine J. Murphy; and Patrick Woodward Electron Configuration of Ions s- and p-block Elements: Examples:Na and Mg S and Cl Transition metals: Examples: Fe: [Ar]3d 6 4s 2 Fe 2+ : [Ar]3d 6 Fe 3+ : [Ar]3d 5

15. © 2012 Pearson Education, Inc. Chemistry, The Central Science, 12th Edition Theodore L. Brown; H. Eugene LeMay, Jr.; Bruce E. Bursten; Catherine J. Murphy; and Patrick Woodward Sample Exercise 8.2 Charges on Ions Solution Plan In each case we can use the element’s position in the periodic table to predict whether the element forms a cation or an anion. We can then use its electron configuration to determine the most likely ion formed. Solve (a) Strontium is a metal in group 2A and therefore forms a cation. Its electron configuration is [Kr]5s 2, and so we expect that the two valence electrons can be lost easily to give an Sr 2+ ion. (b) Sulfur is a nonmetal in group 6A and will thus tend to be found as an anion. Its electron configuration ([Ne]3s 2 3p 4 ) is two electrons short of a noble-gas configuration. (c). Aluminum is in 3A and therefore form a cation. It’s electron configuration is [Ne]3s 2 3p 1. It loses three electron to form Al 3+ ion. Predict the ion generally formed by (a) Sr, (b) S, (c) Al.

16. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Covalent Bonding In covalent bonds, atoms share electrons. There are several electrostatic interactions in these bonds:  Attractions between electrons and nuclei,  Repulsions between electrons,  Repulsions between nuclei.

17. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Lewis Structures Lewis structures are representations of molecules showing all electrons, bonding and nonbonding.

18. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Examples of Covalent Bonds HF H 2 O NH 3 CH 4 Lewis Structures

19. © 2012 Pearson Education, Inc. Chemistry, The Central Science, 12th Edition Theodore L. Brown; H. Eugene LeMay, Jr.; Bruce E. Bursten; Catherine J. Murphy; and Patrick Woodward Sample Exercise 8.3 Lewis Structure of a Compound Solve Nitrogen must share a pair of electrons with three fluorine atoms to complete its octet. Thus, the binary compound these two elements form must be NF 3 : Given the Lewis symbols for nitrogen and fluorine in Table 8.1, predict the formula of the stable binary compound (a compound composed of two elements) formed when nitrogen reacts with fluorine and draw its Lewis structure.

20. © 2012 Pearson Education, Inc. Chemistry, The Central Science, 12th Edition Theodore L. Brown; H. Eugene LeMay, Jr.; Bruce E. Bursten; Catherine J. Murphy; and Patrick Woodward Multiple Covalent Bond Carbon dioxideO=C=O EthyleneH 2 C=CH 2 Nitrogen MoleculeN≡N AcetyleneHC≡CH

21. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Polar Covalent Bonds Though atoms often form compounds by sharing electrons, the electrons are not always shared equally. Fluorine pulls harder on the electrons it shares with hydrogen than hydrogen does. Therefore, the fluorine end of the molecule has more electron density than the hydrogen end.

22. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Electronegativity Electronegativity is the ability of atoms in a molecule to attract electrons to themselves. On the periodic chart, electronegativity increases as you go…(see next slide)  …from left to right across a row.  …from the bottom to the top of a column.

23. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc.

24. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Polar Covalent Bonds The greater the difference in electronegativity, the more polar is the bond. \

25. © 2012 Pearson Education, Inc. Chemistry, The Central Science, 12th Edition Theodore L. Brown; H. Eugene LeMay, Jr.; Bruce E. Bursten; Catherine J. Murphy; and Patrick Woodward Sample Exercise 8.4 Bond Polarity Solution (a) The chlorine atom is common to both bonds. Therefore, the analysis reduces to a comparison of the electronegativities of B and C. Because boron is to the left of carbon in the periodic table, we predict that boron has the lower electronegativity. Chlorine, being on the right side of the table, has a higher electronegativity. The more polar bond will be the one between the atoms having the lowest electronegativity (boron) and the highest electronegativity (chlorine). Consequently, the B—Cl bond is more polar; the chlorine atom carries the partial negative charge because it has a higher electronegativity. (b) In this example phosphorus is common to both bonds, and the analysis reduces to a comparison of the electronegativities of F and Cl. Because fluorine is above chlorine in the periodic table, it should be more electronegative and will form the more polar bond with P. The higher electronegativity of fluorine means that it will carry the partial negative charge. In each case, which bond is more polar: (a) B—Cl or C—Cl, (b) P—F or P—Cl ? Indicate in each case which atom has the partial negative charge.

26. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Polar Covalent Bonds When two atoms share electrons unequally, a bond dipole results. The dipole moment, , produced by two equal but opposite charges separated by a distance, r, is calculated:  = Q r It is measured in debyes (D).

27. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Sample Exercise 8.5 Dipole Moments of Diatomic Molecules Solution Analyze and Plan We are asked in (a) to calculate the dipole moment of HCl that would result if there were a full charge transferred from H to Cl. We can use Equation 8.11 to obtain this result. In (b), we are given the actual dipole moment for the molecule and will use that value to calculate the actual partial charges on the H and Cl atoms. The bond length in the HCl molecule is 1.27 Å. (a) Calculate the dipole moment, in debyes, that results if the charges on the H and Cl atoms were and 1+ and 1–, respectively. (b) The experimentally measured dipole moment of HCl(g) is 1.08 D. What magnitude of charge, in units of e, on the H and Cl atoms leads to this dipole moment? (a) The charge on each atom is the electronic charge, e = 1.60  10 –19 C. The separation is 1.27 Å. The dipole moment is therefore (b) We know the value of µ, 1.08 D, and the value of r, 1.27 Å. We want to calculate the value of Q: We can readily convert this charge to units of e:

28. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Sample Exercise 8.5 Dipole Moments of Diatomic Molecules Continued Thus, the experimental dipole moment indicates that the charge separation in the HCl molecule is Because the experimental dipole moment is less than that calculated in part (a), the charges on the atoms are much less than a full electronic charge. We could have anticipated this because the H—Cl bond is polar covalent rather than ionic.

29. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Writing Lewis Structures 1.Find the sum of valence electrons of all atoms in the polyatomic ion or molecule.  If it is an anion, add one electron for each negative charge.  If it is a cation, subtract one electron for each positive charge. PCl 3 Keep track of the electrons: 5 + 3(7) = 26

30. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Writing Lewis Structures 2.The central atom is the least electronegative element that isn’t hydrogen. Connect the outer atoms to it by single bonds. Keep track of the electrons: 26 − 6 = 20

31. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Writing Lewis Structures 3.Fill the octets of the outer atoms. Keep track of the electrons: 26 − 6 = 20; 20 − 18 = 2

32. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Writing Lewis Structures 4.Fill the octet of the central atom. Keep track of the electrons: 26 − 6 = 20; 20 − 18 = 2; 2 − 2 = 0

33. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Writing Lewis Structures 5.If you run out of electrons before the central atom has an octet… …form multiple bonds until it does.

34. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. a) How many valence electrons should appear in the Lewis structure for CH 2 Cl 2 ? (b) Draw the Lewis structure. Answers: (a) 20 (b)

35. © 2012 Pearson Education, Inc. Chemistry, The Central Science, 12th Edition Theodore L. Brown; H. Eugene LeMay, Jr.; Bruce E. Bursten; Catherine J. Murphy; and Patrick Woodward Sample Exercise 8.8 Lewis Structure for a Polyatomic Ion Solution Bromine (group 7A) has seven valence electrons, and oxygen (group 6A) has six. We must add one more electron to our sum to account for the 1– charge of the ion. The total number of valence electrons is, therefore, 7 + (3  6) + 1 = 26. For oxyanions— BrO 3 –, SO 4 2–, NO 3 –, CO 3 2–, and so forth—the oxygen atoms surround the central nonmetal atom. After following this format and then putting in the single bonds and distributing the unshared electron pairs, we have Notice that the Lewis structure for an ion is written in brackets and the charge is shown outside the brackets at the upper right. Draw the Lewis structure for the BrO 3 – ion.

36. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Writing Lewis Structures Then assign formal charges.  For each atom, count the electrons in lone pairs and half the electrons it shares with other atoms.  Subtract that from the number of valence electrons for that atom: the difference is its formal charge.

37. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Writing Lewis Structures The best Lewis structure…  …is the one with the fewest charges.  …puts a negative charge on the most electronegative atom.

38. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Sample Exercise 8.9 Lewis Structures and Formal Charges Solution (a) Neutral N, C, and S atoms have five, four, and six valence electrons, respectively. We can determine the formal charges in the three structures by using the rules we just discussed: As they must, the formal charges in all three structures sum to 1–, the overall charge of the ion. (b) The dominant Lewis structure generally produces formal charges of the smallest magnitude (guideline 1). That rules out the left structure as the dominant one. Further, as discussed in Section 8.4, N is more electronegative than C or S. Therefore, we expect any negative formal charge to reside on the N atom (guideline 2). For these two reasons, the middle Lewis structure is the dominant one for NCS –. Three possible Lewis structures for the thiocyanate ion, NCS –, are (a) Determine the formal charges in each structure. (b) Based on the formal charges, which Lewis structure is the dominant one?

39. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Resonance This is the Lewis structure we would draw for ozone, O 3.

40. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Resonance But this is at odds with the true, observed structure of ozone, in which…  …both O—O bonds are the same length.  …both outer oxygens have a charge of −1/2.

41. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Resonance One Lewis structure cannot accurately depict a molecule like ozone. We use multiple structures, resonance structures, to describe the molecule.

42. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Resonance Just as green is a synthesis of blue and yellow… …ozone is a synthesis of these two resonance structures.

43. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Structure of Nitrate ion NO 3 -

44. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Resonance In truth, the electrons that form the second C—O bond in the double bonds below do not always sit between that C and that O, but rather can move among the two oxygens and the carbon. They are not localized; they are delocalized.

45. © 2012 Pearson Education, Inc. Chemistry, The Central Science, 12th Edition Theodore L. Brown; H. Eugene LeMay, Jr.; Bruce E. Bursten; Catherine J. Murphy; and Patrick Woodward Sample Exercise 8.10 Resonance Structures Solution The sulfur atom has six valence electrons, as does oxygen. Thus, SO 3 contains 24 valence electrons. In writing the Lewis structure, we see that three equivalent resonance structures can be drawn: As with NO 3 –, the actual structure of SO 3 is an equal blend of all three. Thus, each S—O bond length should be about one-third of the way between the length of a single bond and the length of a double bond. That is, they should be shorter than single bonds but not as short as double bonds. The SO 3 2– ion has 26 electrons, which leads to a dominant Lewis structure in which all the S—O bonds are single: Our analysis of the Lewis structures leads us to conclude that SO 3 should have the shorter S—O bonds and SO 3 2– the longer ones. This conclusion is correct: The experimentally measured S—O bond lengths are 1.42 Å in SO 3 and 1.51 Å in SO 3 2–. Which is predicted to have the shorter sulfur–oxygen bonds, SO 3 or SO 3 2– ?

46. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Resonance The organic compound benzene, C 6 H 6, has two resonance structures. It is commonly depicted as a hexagon with a circle inside to signify the delocalized electrons in the ring.

47. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Exceptions to the Octet Rule There are three types of ions or molecules that do not follow the octet rule:  ions or molecules with an odd number of electrons,  ions or molecules with less than an octet,  ions or molecules with more than eight valence electrons (an expanded octet).

48. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Odd Number of Electrons Though relatively rare and usually quite unstable and reactive, there are ions and molecules with an odd number of electrons.

49. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Fewer Than Eight Electrons Consider BF 3 :  Giving boron a filled octet places a negative charge on the boron and a positive charge on fluorine.  This would not be an accurate picture of the distribution of electrons in BF 3.

50. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Fewer Than Eight Electrons Therefore, structures that put a double bond between boron and fluorine are much less important than the one that leaves boron with only 6 valence electrons.

51. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Fewer Than Eight Electrons The lesson is: If filling the octet of the central atom results in a negative charge on the central atom and a positive charge on the more electronegative outer atom, don’t fill the octet of the central atom.

52. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. More Than Eight Electrons The only way PCl 5 can exist is if phosphorus has 10 electrons around it. It is allowed to expand the octet of atoms on the third row or below.  Presumably d orbitals in these atoms participate in bonding.

53. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. More Than Eight Electrons Even though we can draw a Lewis structure for the phosphate ion that has only 8 electrons around the central phosphorus, the better structure puts a double bond between the phosphorus and one of the oxygens.

54. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. More Than Eight Electrons This eliminates the charge on the phosphorus and the charge on one of the oxygens. The lesson is: When the central atom is on the third row or below and expanding its octet eliminates some formal charges, do so.

55. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Covalent Bond Strength Most simply, the strength of a bond is measured by determining how much energy is required to break the bond. This is the bond enthalpy. The bond enthalpy for a Cl—Cl bond, D(Cl— Cl), is measured to be 242 kJ/mol.

56. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Average Bond Enthalpies Table 8.4 lists the average bond enthalpies for many different types of bonds. Average bond enthalpies are positive, because bond breaking is an endothermic process.

57. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Average Bond Enthalpies Note: These are average bond enthalpies, not absolute bond enthalpies; the C—H bonds in methane, CH 4, will be a bit different than the C—H bond in chloroform, CHCl 3.

58. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Enthalpies of Reaction Yet another way to estimate  H for a reaction is to compare the bond enthalpies of bonds broken to the bond enthalpies of the new bonds formed. In other words,  H rxn =  (bond enthalpies of bonds broken) −  (bond enthalpies of bonds formed)

59. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Enthalpies of Reaction CH 4 (g) + Cl 2 (g)  CH 3 Cl(g) + HCl(g) In this example, one C—H bond and one Cl—Cl bond are broken; one C—Cl and one H—Cl bond are formed.

60. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Enthalpies of Reaction So,  H = [D(C—H) + D(Cl—Cl)] − [D(C—Cl) + D(H—Cl)] = [(413 kJ) + (242 kJ)] − [(328 kJ) + (431 kJ)] = (655 kJ) − (759 kJ) = −104 kJ

61. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Sample Exercise 8.12 Using Average Bond Enthalpies Solution Analyze We are asked to estimate the enthalpy change for a chemical reaction by using average bond enthalpies for the bonds broken and formed. Plan In the reactants, we must break twelve C—H bonds and two C—C bonds in the two molecules of C 2 H 6 and seven O 2 bonds in the seven O 2 molecules. In the products, we form eight C==O bonds (two in each CO 2 ) and twelve O—H bonds (two in each H 2 O). Solve Using Equation 8.12 and data from Table 8.4, we have  H = [12D(C—H) + 2D(C—C) + 7D(O 2 )] – [8D(C==O) + 12D(O—H)] = [12(413 kJ) + 2(348 kJ) + 7(495 kJ)] – [8(799 kJ) + 12(463 kJ)] = 9117 kJ – 11948 k J = –2831 kJ Using data from Table 8.4, estimate  H for the reaction

62. Basic Concepts of Chemical Bonding © 2012 Pearson Education, Inc. Bond Enthalpy and Bond Length We can also measure an average bond length for different bond types. As the number of bonds between two atoms increases, the bond length decreases.