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Summary A2 Unit 1: Lattice Enthalpy

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Summary of Lattice Enthalpy for CCEA A2 Chemistry Unit 1

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Lattice Enthalpy

Definition enthalpy change when one mole of an
ionic compound is converted into gaseous
ions
Factors
1 ionic radius of ion
size

2 Charge density charge of ion


Values are always positive as

endo ran energy is takenin to breakstrong electrostatic
attractions
offorcesbetween ions

Trends
decreases ionic radius charge remains
same lower chargedensity
F Ci Bi less attractionbetween ions
Nat 918 780 742
ionic radius of G2 ions
K 817 711 679 fromG1 G2 chargefrom G1 G2
t
2526 chargedensity
Mg greaterattractionbetween ion
Ca 2259

i P ionic radius down group
foggy charge remains same
lower chargedensity
less attraction betweenions

, Born Haber Cycles

Enthalpy Formation enthalpychangewhen one moleof a
of compound is formedfromitselements
in theirstandard states

Na leg Nacl
eg s s



Enthalpyof Atomisation enthalpychange when one moleof gaseous
sublimation atoms isformedfrom an element in its
standard state

Na Nacg 1242cg
eg s Cligs


Bond Dissociation Enthalpy enthalpychange when all thebondsof
thesametype in 1 mole ofgaseous
need molecules are broken
2
only if
atoms you You
eg Cycg 24cg
hadot.IEThem

First Ionisation Energy Energyrequired toremove one electronfrom
onemole atoms to produce one mole
ofHgaseous
ions
ofgaseous
Na g Nat e
eg
Second Ionisation
Energy Energyrequired toremove one electronfrom
It ions to produce one more
gorgasian 29 p
eg Na Nat e

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