ch08---covalent-bonding.ppt
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1、New Way Chemistry for Hong Kong A-Level Book 11Chapter 8Covalent Bonding8.1 Formation of Covalent Bonds8.2 Dative Covalent Bonds8.3 Bond Enthalpies8.4 Estimation of Average Bond Enthalpies using Data from EnergeticsNew Way Chemistry for Hong Kong A-Level Book 128.5 Use of Average Bond Enthalpies to
2、Estimate Enthalpy Changes of Reactions8.6 Relationship between Bond Enthalpies and Bond Lengths8.7 Shapes of Covalent Molecules and Polyatomic Ions8.8 Multiple Bonds8.9 Covalent CrystalsNew Way Chemistry for Hong Kong A-Level Book 13 Electron Sharing in Covalent BondsH HShared electronsThe shared el
3、ectron pair spends most of the time between the two nuclei.e-e-Attraction between oppositely charged nuclei and shared electrons(_ in nature)electrostaticOverlapping of atomic orbitals covalent bond formation8.1 Formation of Covalent Bonds(SB p.203)New Way Chemistry for Hong Kong A-Level Book 148.1
4、Formation of Covalent Bonds(SB p.203)A hydrogen molecule is achieved by partial overlapping of 1s orbitalsNew Way Chemistry for Hong Kong A-Level Book 15Thus electrons are shared between the two atoms.8.1 Formation of Covalent Bonds(SB p.204)Electron density map for covalent compoundsThere is substa
5、ntial electron density at all points along the internuclear axis.New Way Chemistry for Hong Kong A-Level Book 168.1 Formation of Covalent Bonds(SB p.204)Electron density map for ionic compoundsNew Way Chemistry for Hong Kong A-Level Book 17 Covalent Bonds in ElementsSome ExamplesDot and cross diagra
6、m8.1 Formation of Covalent Bonds(SB p.205)New Way Chemistry for Hong Kong A-Level Book 18Covalent Bonds in CompoundsSome ExamplesCarbon1s2s2pAll the above examples obey _.Octet rule8.1 Formation of Covalent Bonds(SB p.205)New Way Chemistry for Hong Kong A-Level Book 19Some ExamplesAll the above exam
7、ples obey _.Carbon1s2s2pelectrons from HOctet ruleoctet8.1 Formation of Covalent Bonds(SB p.205)Covalent Bonds in CompoundsNew Way Chemistry for Hong Kong A-Level Book 110Octet Rule and its limitationsBF3Why doesnt B form ionic compounds with F?B:small atomic sizehigh I.E.s required to become a cati
8、on.electrons from F8.1 Formation of Covalent Bonds(SB p.206)not fullfilling octect(electron deficient)New Way Chemistry for Hong Kong A-Level Book 111Octet Rule and its limitationsPCl5Why Phosphorus can expand its octet to form PCl5?There is low-lying vacant d-orbital in P.electrons from Cl8.1 Forma
9、tion of Covalent Bonds(SB p.207)New Way Chemistry for Hong Kong A-Level Book 112NH3BF3 Molecule8.2 Dative Covalent Bonds(SB p.208)New Way Chemistry for Hong Kong A-Level Book 113Dative Covalent BondsThe dative covalent bond(also known as the coordinate bond)is a type of covalent bond in which the sh
10、ared pair of electrons is supplied by only one of the bonded atoms.Remarks(1)The atom that supplies the shared pair of electrons is known as the donor while the other atom involved in the dative covalent bond is known as the acceptor.(2)Once formed,a dative covalent bond cannot be distinguished from
11、 a normal covalent bond.8.2 Dative Covalent Bonds(SB p.208)New Way Chemistry for Hong Kong A-Level Book 114Ammonium Ion(NH4+)8.2 Dative Covalent Bonds(SB p.209)New Way Chemistry for Hong Kong A-Level Book 115Aluminium Chloride Dimer(Al2Cl6)AlCl3Why doesnt Al form ionic compounds with Cl?Al:relative
12、small atomic size;high I.E.s required to become a cation of+3 charge.(a dimer of AlCl3)8.2 Dative Covalent Bonds(SB p.209)New Way Chemistry for Hong Kong A-Level Book 116Bond EnthalpiesWhy do successive B.D.E.of C-H differ?(Average)bond enthalpy;E(C-H)=+415.5 kJ mol-18.3 Bond Enthalpies(SB p.210)CH4
13、(g)CH3(g)+H(g)H =+422 kJ mol-1CH3(g)CH2(g)+H(g)H =+480 kJ mol-1CH2(g)CH(g)+H(g)H =+425 kJ mol-1CH(g)C(g)+H(g)H =+335 kJ mol-1Bond Dissociation EnthalpiesB.D.E of a certain bond is the amount of energy required to break one mole of that bond under standard conditions.e.g.H-H(g)2H(g)H(H-H)=+431 kJ mol
14、-1New Way Chemistry for Hong Kong A-Level Book 117Bond EnthalpiesWhy is this value of E(C-H)still different from the previously calculated one(+415.5 kJ mol-1)?8.3 Bond Enthalpies(SB p.211)BondAverage bond enthalpy(kJ mol-1)H-HC-CC CC CC-HO-H+436+348+612+837+412+463New Way Chemistry for Hong Kong A-
15、Level Book 118Bond EnthalpiesRemarksBond enthalpies refer to the energy required to break bonds(+ve)For the formation of a certain bond,the enthalpy change is represented by“-bond enthalpy”(-ve)The bond enthalpy is a measure of bond strength.How?8.3 Bond Enthalpies(SB p.211)New Way Chemistry for Hon
16、g Kong A-Level Book 119From the Enthalpy Change of Atomization of a CompoundThe enthalpy change of atomization of methane(CH4)is+1662 kJ mol-1.Find a value for the bond enthalpy of C-H based on the above data.E(C-H)=+415.5 kJ mol-18.4 Estimation of Average Bond Enthalpies using Data from Energetics(
17、SB p.212)The atomization of methane involves the breaking of a four C-H bonds.Assume that all four C-H bonds are equal in strength.The average bond enthalpy of C-H bonds=x(+1 662)kJ mol-1=+415.5 kJ mol-1 C(g)+4H(g)H=+1 662 kJ mol-1 New Way Chemistry for Hong Kong A-Level Book 120The standard enthalp
18、y change of atomization of a compound is the enthalpy change when one mole of gaseous compound is broken down into its constituent atoms in the gaseous state under standard conditions,e.g.CH4(g)C(g)+4H(g)1 moleThe standard enthalpy change of atomization of a element is the enthalpy change when one m
19、ole of gaseous atoms is formed into its constituent atoms in the gaseous state under standard conditions,e.g.Cl2(g)Cl(g)1 mole8.4 Estimation of Average Bond Enthalpies using Data from Energetics(SB p.212)New Way Chemistry for Hong Kong A-Level Book 121The enthalpy change of atomization of butane(C4H
20、10)and pentane(C5H12)are+5165 kJ mol-1 and+6337 kJ mol-1 respectively.Find a values for the bond enthalpies of C-H and C-C based on the above data.8.4 Estimation of Average Bond Enthalpies using Data from Energetics(SB p.214)From the Enthalpy Changes of Atomization of Two CompoundsFor butane,3 E(C-C
21、)+10 E(C-H)=+5 165 kJ mol-1.(1)For pentane,4 E(C-C)+12 E(C-H)=+6 337 kJ mol-1.(2)Solving simultaneous equations(1)and(2),we obtain the following bond enthalpy values.E(C-H)=+412.25 kJ mol-1 E(C-C)=+347.5 kJ mol-1 New Way Chemistry for Hong Kong A-Level Book 1228.5 Use of Average Bond Enthalpies to E
22、stimate Enthalpy Changes of Reactions(SB p.214)Reaction of ethene and hydrogenSum of bond enthalpies of productsEnthalpy change of reaction=Sum of bond enthalpies of reactants-New Way Chemistry for Hong Kong A-Level Book 1238.5 Use of Average Bond Enthalpies to Estimate Enthalpy Changes of Reactions
23、(SB p.215)Enthalpy profile for the reaction of ethene and hydrogenNew Way Chemistry for Hong Kong A-Level Book 124?Sum of bond enthalpies of reactants=E(C=C)+4E(C-H)+E(H-H)=(612)+4(412)+(436)=+2696 kJmol-1Sum of bond enthalpies of products=E(C-C)+6E(C-H)=(348)+6(412)=+2820 kJmol-1Hr=2696-(+2820)=-12
24、4 kJ mol-1Only an estimated value for Hr.Why?8.5 Use of Average Bond Enthalpies to Estimate Enthalpy Changes of Reactions(SB p.214)Reaction of ethene and hydrogenNew Way Chemistry for Hong Kong A-Level Book 125Consider C-C,C=C and CCbond order =1bond order =2bond order =3As the bond order increases,
25、the bond strength also increases.8.6 Relationship between Bond Enthalpies and Bond Lengths(SB p.217)BondAverage bond enthalpy(kJ mol-1)H-HC-CC CC CC-HO-H+436+348+612+837+412+463Bond Enthalpies as an Indication of the Strength of Covalent BondsNew Way Chemistry for Hong Kong A-Level Book 126Bond leng
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