,
, 13 -Energetics 2
hermodynamics Enthalpy
↑
-
&H , e fionisation energy)
isionisation enthalpy
energy: change when each arom in I mole
to form I mole of
gaseous
of gaseous atoms loses one electron
long
it
2nd conisation enthalpy
energy: change when each on in
lows
it loses electron to form one
I mole of
Saseous an
mole of
gaseous 2+ ions
* ea /electron affinitel
ist electron enthalpy
affinity: change when each atom in
electron to form one mole
I mole ofsaseous atoms sains one
I-ions/exothermic for Ist, endothermic for 2nd
of gaseous
*atatomisation) -
enthalpy change when I mole of gaseous
its standard State
atoms is produced from an elementin
OHmod-enthalpy change when I mole ofgaseous ions become
hydrated /disolved in waver always exolhermic
Uttsol/solution) -
enthalpy change when I mole ofan ionic
so all
large enough
solid disolves in an amountofwater
do not interact with
dissolved ions are well separated and
each other
AH is /bond dissociation) -
enthalpy chance when I mole covalent
of
bonds is broken in the gaseous state
WH lalt-enthalpy change when one mole ofsolid ionic compound
is formed from its constituentions in gas phase (NH=-iver
WHvap /vaporisation) -
enthalpy change when I mole of
a liquid
is turned into a sas /H=+ivel
, 13 -Energetics 2
hermodynamics Enthalpy
↑
-
&H , e fionisation energy)
isionisation enthalpy
energy: change when each arom in I mole
to form I mole of
gaseous
of gaseous atoms loses one electron
long
it
2nd conisation enthalpy
energy: change when each on in
lows
it loses electron to form one
I mole of
Saseous an
mole of
gaseous 2+ ions
* ea /electron affinitel
ist electron enthalpy
affinity: change when each atom in
electron to form one mole
I mole ofsaseous atoms sains one
I-ions/exothermic for Ist, endothermic for 2nd
of gaseous
*atatomisation) -
enthalpy change when I mole of gaseous
its standard State
atoms is produced from an elementin
OHmod-enthalpy change when I mole ofgaseous ions become
hydrated /disolved in waver always exolhermic
Uttsol/solution) -
enthalpy change when I mole ofan ionic
so all
large enough
solid disolves in an amountofwater
do not interact with
dissolved ions are well separated and
each other
AH is /bond dissociation) -
enthalpy chance when I mole covalent
of
bonds is broken in the gaseous state
WH lalt-enthalpy change when one mole ofsolid ionic compound
is formed from its constituentions in gas phase (NH=-iver
WHvap /vaporisation) -
enthalpy change when I mole of
a liquid
is turned into a sas /H=+ivel