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1 9 Chemical Bonds Chemical Bond: atoms or ions strongly attached to one another. There are 3 types: Ionic, Covalent, and Metallic Bonds.

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Presentation on theme: "1 9 Chemical Bonds Chemical Bond: atoms or ions strongly attached to one another. There are 3 types: Ionic, Covalent, and Metallic Bonds."— Presentation transcript:

1 1 9 Chemical Bonds Chemical Bond: atoms or ions strongly attached to one another. There are 3 types: Ionic, Covalent, and Metallic Bonds.

2 2 Ionic Bonds Electrostatic force that exists between particles of opposite charge that results from a transfer of electrons metals to non- metals.

3 3 Common Features of Ionic Bonds Ionic bonds form between metals and non-metals In naming simple ionic compounds, the metal is always first, the non-metal second (ie. sodium chloride),

4 4 Common Features of Ionic Bonds Ionic compounds ionize easily in water and other polar solvents In solution, ionic compounds easily conduct electricity Ionic compounds tend to form crystalline solids with high melting points

5 5 Covalent Bond Sharing of electrons between two non- metals Sharing can be equal (non-polar) Sharing can be not equal (polar)

6 6 Features of Covalent Bond Each atom shares its unpaired electron, both atoms are “tricked” into thinking each has a full valence of eight electrons. Tend to be gases, liquids or low melting point solids, because the intermolecular forces of attraction are comparatively weak.

7 7 Features of Covalent Bond Most covalent substances are insoluble in water but are soluble in organic solutions. Poor conductors

8 8 Metallic Bonds Bonds between metals (go figure!) Metals have low ionization energies, thus they do not have a tight hold on their valence electrons. Thus forming an "electron sea" that cements the positive nuclei together, and shields the positive cores from each other.

9 9 The electrons are not bound to any particular atom, and are free to move when an electrical field is applied. This accounts for the electrical conductivity of metals, and also their thermal conductivity since the moving electrons carry thermal vibration energy from place to place as they move. e-e-

10 10 Features of Metallic Bonds Metals are good conductors of heat and electricity. This is directly due to the mobility of the electrons. The "cement" effect of the electrons determines the hardness of the metal. Some metals are harder than others; the strength of the "cement" varies from metal to metal.

11 11 More Features of Metallic Bonds Metals are lustrous (shine) Metals are malleable (can be flattened) and ductile (can be drawn into wires) because of the way the metal cations and electrons can "flow" around each other, without breaking the crystal structure.

12 12 Valence Electrons The electrons in the outer most shell of an atom that are involved in bonding. The number of valence electrons an atom has is the group number. –Example: Group 1A or IA = 1 valence electron

13 13 Lewis Structures A method used to illustrate valence electrons and bonding between atoms. –Example: Sulfur = Group 6 = 6 valence e - ● ● ● ● S

14 14 Lewis Structure Rules Remember Hund’s Rule when distributing your dots ( electrons). Each side can hold 2 electrons (L,R, T, B) With a max of 8 valence electrons (Octet Rule). Table 9.1 pg 358 is a great help

15 15 Octet Rule Rule of eight! Atoms tend to gain, share, or lose electrons until they have 8 electrons in their valence shell. Note what the largest group number is. Exception: Hydrogen = Rule of 2

16 16 8.2 Ionic Bonding Look at the balanced reaction of sodium (metal) and chloride (non-metal). Na(s) + 1/2Cl 2 (g) NaCl (s) Note: ΔH f = -410.9 kJ Therefore: we have an enthalpy change that is exothermic (exo = out)

17 17 Lewis diagram of NaCl Na + Cl = Na + + Cl - Cl gains Na’s electron

18 18 Na(s) + 1/2Cl 2 (g) NaCl (s) Note: ΔH f = - 410.9 kJ exothermic But we are losing an e -, ionization energy should have a + ΔH f or endothermic. (Ch 7 notes). When a NON-metal (Cl) gains an e- the process is generally negative like this. (ch 7 notes).

19 19 Question Draw the Lewis structure for: C Ca Al

20 20 8.3 Covalent Bonding

21 21 Illustrating Covalent Bonds Each pair of shared electrons is a line. C – C Unshared electrons are dots.

22 22 Multiple Bonds Single bond: 2 atoms share 1 pair of electrons C-C Double Bond: 2 atoms share 2 pairs o f electrons C=C Triple Bond: 2 atoms share three pairs of electrons. CΞC

23 23 Question What type (number) of bonds hold the following molecules together. Cl 2 CO 2 N 2

24 24 Answer Cl-Cl O = C = O N Ξ N

25 25 Bond Length and Strength In general as the number of bonds between two atoms increases the bond length grows SHORTER and STRONGER Bond C - CC = CC Ξ C Length (A) 1.541.341.20 Energy KJ/mol 348614839

26 26 A Note on Strength & Energy The energy it takes to break a bond is equal to the energy to make that bond. The strength of a covalent bond between two atoms is determined by the energy required to break the bond.

27 27 Homework Chang pg 392 1,3,34,37,39 BL 1-3, 5-8, 11, 13, 26, 29, 30

28 28 8.4 Bond Polarity and Electronegativity Bond polarity: describes the sharing of e- between atoms Non-polar covalent bond: e- are shared equally between two atoms. Polar: one atom exerts a great force of attraction for e- than the other atom. Creating a dipole moment.

29 29 Electronegativity Estimates whether a given bond will be polar, non-polar, or ionic. The ability of an atom in a molecule (bonded) to attract electrons to itself. ↑electronegativity ↑ability to attract e-

30 30 EN Trend

31 31 EN and Bond Polarity The greater the difference in EN between 2 atoms the more polar the bond is. Figure 9.5 pg 370

32 32 Example CompoundF2F2 HF EN difference4 – 4 = 02.1 – 4 = 1.9 Type of Bond Non-polar covalent Polar covalent SharingEqualUnequal * The bigger the difference the more polar

33 33 As the electronegativity difference between the atoms increases, the degree of sharing decreases. If the difference in electronegativity is 2 or more, the bond is GENERALLY considered more IONIC than covalent. If the electronegativity difference is between 0.1 and 2, the bond is a POLAR COVALENT. If the electronegativity difference is ZERO, the bond is considered to be a NONPOLAR COVALENT. Determining Types of Bonds using Electronegativity

34 34 Zero difference in electronegativity Difference is between 0.1 and 2 difference in electronegativity is 2 or more

35 35 Dipole Moments Polar molecules have slight + and – charges at each end of the molecule. This is what allows them to easily attract ions and have strong intermolecular forces. Think of the cross as a plus sign. electronegativity = 2.1 3.0 Symbol illustrates the shift in electron density. The arrow points in the direction of increasing density.

36 36 Another way to illustrate bond polarity *Use this one in class

37 37 Examples Of Illustrating Bond Polarity HCl H - Cl EN 2.0 - 3.0 = 1.0 = polar covalent

38 38 Question A. Calculate the difference in EN B. Illustrate the bond polarity for the following molecules. C. State if the bond is polar, non-polar, or ionic. Cl 2 SO 3 H 2 O

39 39 Cl – Cl EN 3.0 3.0 = 0 = non-polar S - O 3 EN 2.5 3.5 (each) = 1.0 = polar H 2 O 2.1 3.5 = 1.4 polar

40 40 HW polarity wks

41 41 Lewis Structure Rules for Molecules 1. Add up all the valence e- for all the atoms in the molecule. ex: PCl 3 P = 5 Cl = 7 x 3 = 21 Total of 26e- * For a molecule with a + charge subtract and e-, for a molecule with a – chg add and e- to the total. Ex: 2- charge add 2 e-

42 42 2. Write the symbol for the atoms to show which atoms are connect to which using a single line (-). The central atom is usually written 1 st in the molecular formula. PCl 3 P Cl Used e- Talley 26 e- 6 e- 20e- left

43 43 3. Complete the octet of the atoms bonded to the central atom. P Cl Used e- Talley 20 e- 18 e- 2 e- left

44 44 4. Place any e- left on the central atom even if doing so results in more than a full octet P Cl Used e- Talley 2 e- 0 e- left

45 45 5. If there are not enough e- to give the central atom a full octet try multiple bonds.

46 46 6. If there is a charge on the molecule you need to place the Lewis structure in brackets and show the charge.

47 47 White Boards As a class lets do CH 2 Cl 2

48 48 Draw the Lewis structure for the following. C 2 H 4 BrO 3 - ClO 2 - PO 4 3- Question

49 49 Homework Change pg 392 #’s 43,44

50 50 Formal Charge Formal charge is an accounting procedure. It allows chemists to determine the location of charge in a molecule as well as compare how good a Lewis structure might be.

51 51 We calculate the formal charge for each atom in a molecule. We can check our work by adding the FC’s up we get the charge of the molecule. Formal Charge = (# Ve-) – (# non-bonding e- + ½ # bonding e-)

52 52 Calculating formal charge (FC) 1. Draw the Lewis Structure CN - [ : C Ξ N : ] -

53 53 2. Assigned unshared e-to the atom they are bound to. [ : C Ξ N : ] - 2 non-bonding e-

54 54 3. Half of the non-bonding e- are assigned to each atom. [ : C Ξ N : ] - 2 non-bonding e- 6e- in triple bond/2 = 3 2 non-bonding e- 6e- in triple bond/2 = 3

55 55 4. Apply the FC equation. [ : C Ξ N : ] - 2 non-bonding e- 6e- in triple bond/2 = 3 3 + 2 = 5 e- in Lewis C = 4Ve- FC for C = 4 – 5 = -1 2 non-bonding e- 6e- in triple bond/2 = 3 3 + 2 = 5 e- in Lewis N = 5Ve- FC for N = 5 – 5 = 0 Formal Charge = (# Ve-) – (# non-bonding e- + ½ # bonding e-)

56 56 5. Repeat this process with each possible Lewis Structure for that molecule (aka resonance structure). Question: How many resonance structures are there for NCS -

57 57 Ve- 5 4 6 5 4 6 - 5 4 7 6 4 6 __________________________________________________ 0 0 -1 -1 0 0 dddddddddd Ve- 5 4 6 - 7 4 5 _______________________________ -2 0 1 [ N - C Ξ S ]-

58 58 Question Calculate the formal charge for all of the resonance structures of NCO -.

59 59 Homework Chang: pg 392 #’s 45,46,52,55 BL 32-36 all, 43-45

60 60 8.6 Resonance Placement of atoms is the same but placement of electrons is different. Used when 2 or more Lewis structures are usually good descriptions of a single model.

61 61 Resonance of Ozone 0 3

62 62 Question Draw the three resonance structures for SO 3

63 63 Answer

64 64 8.7 Three Exceptions to the Octet Rule 1.Molecules with an odd number of e- NO = 11Ve- or N = O

65 65 2. Molecules where an atom has less than an octet. This occurs most with Boron and Beryllium. BF 3 = 24 Ve- For these two atoms (Be & B) it is more stable with out a full octet than with a double bond.

66 66 3. Molecules which an atom has more than an octet. PCl 5 = 40 Ve-

67 67 Homework Chang pg 393 #’s 45,46,4752,55

68 68 8.8 Strength of Covalent Bonds Bond strength = the degree of energy required to break that bond. We call this degree of energy bond enthalpy, ΔH ΔH is always positive. Use table 9.4 pg 386 to determine bond energies. You will be given this on a test or quiz. (YES!)

69 69 Question What is the bond enthalpy ΔH for the following bonds. H-F N=N Which bond will be harder to break H-F or N=N

70 70 Answer H – F = 567 KJ/mol N = N = 418 KJ/mol I – Cl = 208 KJ/mol Si – Cl = 464 KJ/mol and will be harder to break.

71 71 Calculating enthalpy of a Reaction Enthalpy of a reaction (ΔH rxn ) is the sum of the enthalpies of the reactants minus the sum of the enthalpies of the products. Unlike ΔH, ΔH rxn can be positive or negative. ΔHrxn = Σ(bond energy of reactants) - Σ(bond energy of products)

72 72 Example: H 2 + Cl 2 2HCl H-H Cl-Cl 2(H-Cl) ΔH= 436 242 2(431) ΔH rxn = (436+ 242) – (862) = - 184 KJ/mol

73 73 Homework Chang pg 393 63,70,72 BL 57-61

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