2020高中化学路易斯共价键理论.ppt
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- 2020 高中化学 路易斯 共价键 理论
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1、2020高中化学路易斯共价键理论1、Lewis 符号符号H He:K:Cl:Cl:2、Lewis 符号和离子键符号和离子键+Ca:+:Cl:Cl:-Ca2+:Cl:-:可以通过共用电子对形成分子,共价键,共价分子。可以通过共用电子对形成分子,共价键,共价分子。八隅体规则八隅体规则Lewis SymbolsRepresent the number of valence electrons as dotsValence number is the same as the Periodic Table Group NumberHLiBeBCNOFNeHeNa;Is2,2s2,2p6,3s1=Ne 3
2、s1Lewis Structure=NaFor example,Groups 12 3 4 5 6 7 8 Elements want to achieve the stable electron configuration of the nearest noble gasAtoms tend to gain,lose or share electrons until they are surrounded by 8 electronsOctet RuleNeNobel Gas Has a Stable Electron ConfigurationArNe;1s2,2s2,2p6Ar;Ne 3
3、s2,3p6 FNa+Na+F _Electronic configuration of Neon achieved in both casesExample of Ionic Bonding10119Ionic Bonding refers to electrostatic forces between ions,usually a metal cation and a non-metal anion Covalent Bonding results from the sharing of two electrons between two atoms(usually non-metals)
4、resulting in moleculesThere are two types of bonding;Octet Rule appliesHHHHClClClClNNNN+number of electrons around each atom=He+number of electrons around each atom=Ar+number of electrons around each atom=NeEach Covalent Bond contains two electronsTriple bondHCHHHmethaneCarbon has 4 valence electron
5、sCHHHHHCNe NeonStable Octet required Covalent Bonding Atoms Share ElectronsHCHHHmethaneCarbon has 4 valence electronsCHHHHHCNe NeonStable Octet required Covalent Bonding Atoms Share ElectronsHydrogen molecule,H2Concentration of negative charge between two nuclei occurs in a covalent bond7A elements(
6、e.g.F)have one valence electron for covalent bonding,so to achieve octet6A elements(e.g.O)use two valence electrons for covalent bonding,so to achieve octet5A elements(e.g.N)use three valence electrons for covalent bonding,so to achieve octet4A elements(e.g.C)use four valence electrons for covalent
7、bonding,so to achieve octetPClClClPClClClRules for Drawing Lewis StructuresFirst sum the number of valence electrons from each atomThe central atom is usually written first in the formulaComplete the octets of atoms bonded to the central atom(remember that H can only have two electrons)Place any lef
8、t over electrons on the central atom,even if doing so it results in more than an octetIf there are not enough electrons to give the central atom an octet,try multiple bonds PCl3Total Number of valence electrons=5+(3 x 7)=26PClClClCHBr3Total Number of valence electrons=4+1+(3 x 7)=26BrCBrHBr共价键八隅体规则的
9、特例共价键八隅体规则的特例1.Molecules with an odd number of electrons2.Other Natural Radicals,which do not obey Lewis Structures(e.g.O2)2.Molecules in which an atom has less than an octet3.Molecules in which an atom has more than an octet1.Odd Number of ElectronsNONumber of valence electrons=11N ON OResonace Arr
10、owsO OO OOxygen is a ground statediradicalNO2Number of valence electrons=17O2Resonance occurs when more than one valid Lewis structure can be written for a particular molecule(i.e.rearrange electrons)Molecules and atoms which are neutral(contain no formal charge)and with an unpaired electron are cal
11、led RadicalsN OON OON OORadicals and BiradicalsSpecies having electrons with unpaired spins are called radicals.One example is the methyl radical,CH3,which is so reactive that it cannot be stored.Radicals are of crucial importance for the chemical reactions that take place in the upper atmosphere,wh
12、ere they contribute to the formation and decomposition of ozone.A biradical is a molecule with two unpaired electrons.One of the most important examples is the oxygen atom itself.Its electron configuration is He2s22px 22py 12pz1 and its Lewis symbol is.The O atom has two unpaired electrons,and so it
13、 can be regarded as a special type of biradical.2.Less than an OctetIncludes Lewis acids such as halides of B,Al and compounds of BeBCl3Group 3A atom only has six electrons around itHowever,Lewis acids“accept”a pair of electrons readily from Lewis bases to establish a stable octetClAlClClNHHHClAlClC
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