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2Na(s) + Cl 2 (g) 2NaCl (s) Synthesizing an Ionic Compound
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Explaining Salt Formation using the Born-Haber Cycle
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Na(s) + Cl 2 NaCl H° f = -411 kJ/mol Na(s) Na(g) H° f = 108 kJ/mol Cl 2 Cl(g) H° f = 122 kJ/mol Na(g) Na + (g) + e - I 1 = 496 kJ/mol Cl(g) + e - Cl - (g) E = -349 kJ/mol H = [ H° f (NaCl)] - [ H° f (Na + ) + H° f (Cl - ) + I 1 + E] H = -788 kJ/mol Explaining Salt Formation using the Born-Haber Cycle
![Na(s) + Cl 2 NaCl H° f = -411 kJ/mol Na(s) Na(g) H° f = 108 kJ/mol Cl 2 Cl(g) H° f = 122 kJ/mol Na(g) Na + (g) + e - I 1 = 496 kJ/mol Cl(g) + e - Cl - (g) E = -349 kJ/mol H = [ H° f (NaCl)] - [ H° f (Na + ) + H° f (Cl - ) + I 1 + E] H = -788 kJ/mol Explaining Salt Formation using the Born-Haber Cycle](http://images.slideplayer.com/32/10088067/slides/slide_4.jpg "Na(s) + Cl 2 NaCl H° f = -411 kJ/mol Na(s) Na(g) H° f = 108 kJ/mol Cl 2 Cl(g) H° f = 122 kJ/mol Na(g) Na + (g) + e - I 1 = 496 kJ/mol Cl(g) + e - Cl - (g) E = -349 kJ/mol H = [ H° f (NaCl)] - [ H° f (Na + ) + H° f (Cl - ) + I 1 + E] H = -788 kJ/mol Explaining Salt Formation using the Born-Haber Cycle")
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Describing Electrostatic Attraction and Repulsion E = k Q1Q2Q1Q2 d E > 0 if the charges Q 1 and Q 2 have the same sign Potential energy increases because the particles are repelling E < 0 if the charges Q 1 and Q 2 have different signs Potential energy decreases because the particles are attracting
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The lattice energy of NaCl is the result of all the electrostatic repulsions and attractions. Because the attractions outweigh the repulsions, the lattice energy is positive and large E = k Q1Q2Q1Q2 d
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Sizes of Ions size depends upon nuclear charge size depends upon numbers of electrons size depends upon orbitals in which the outer electrons reside
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Within an Isoelectric Series, the higher the atomic number the smaller the ion
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Covalent Bonds are formed by shared pairs of electrons H H + HH HH Cl + Single Bonds Double Bonds O O + C + O O C O O C Triple Bonds N N + N N
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Resonance Forms O O O O O O
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Molecules with an odd number of electrons Molecules in which an atom has less than an octet NO contains 5 + 6 = 11 electrons. No octet can be established Though rare, these are most often encountered in compounds of Born and Beryllium B F F F Exceptions to the Octet Rules
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Molecules in which an atom has more than an octet This is observed in compounds constructed from period 3 elements and beyond P Cl 3s 3p3d Exceptions to the Octet Rules
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Strengths of Covalent Bonds Bond dissociation Energy (Bond Energy): is the enthalpy change ( H) required to break a particular bond in a mole of gaseous substance (g) Cl 2 (g) H = 242 kJ Bond Energies and the Enthalpy of Reactions H = (bond energies of bonds broken) - (bond energies of bonds formed)
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Cl 2(g) + H-CH 3 H-Cl(g) + CH 3 Cl H = [(Cl-Cl) + 4(H-C)] - [(Cl-Cl) + 3(H-C) + (Cl-C)] H = [242 kJ+4(413 kJ)]-[431 kJ + 4(413kJ) + (328)] = -104 kJ
![Cl 2(g) + H-CH 3 H-Cl(g) + CH 3 Cl H = [(Cl-Cl) + 4(H-C)] - [(Cl-Cl) + 3(H-C) + (Cl-C)] H = [242 kJ+4(413 kJ)]-[431 kJ + 4(413kJ) + (328)] = -104 kJ](http://images.slideplayer.com/32/10088067/slides/slide_15.jpg "Cl 2(g) + H-CH 3 H-Cl(g) + CH 3 Cl H = [(Cl-Cl) + 4(H-C)] - [(Cl-Cl) + 3(H-C) + (Cl-C)] H = [242 kJ+4(413 kJ)]-[431 kJ + 4(413kJ) + (328)] = -104 kJ")
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Bond Strength and Bond Length
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Electronegativity and Bond Polarity “the ability of an atom in a molecule to attract electrons to itself”
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Electronegativity and Bond Polarity H 2 : E diff = 2.1 -2.1 = 0 HCl: E diff = 3.0 -2.1 = 0.9 Cl 2 : E diff = 3.0 - 3.0 = 0 note that LiF is ionic : E diff = 4.0 - 1.0 = 3.0 H Cl H ++ -- BH 3 2.1-2.0 =.1
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Ionic Character 4 The bigger the electronegativity difference the more ionic character. 4 1.4 has more ionic character than 1.2
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noble gas configurations 4 Cl 1- 4 Na 1+ 4 Cu 1+ 4 Sn 2+
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Isoelectronic 4 O 2-, Cl 1-, Ne, Na 1+, Mg 2+ 4 size trend
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energy diagram page 366
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