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16 Cards in this Set

  • Front
  • Back

Enthalpy change of formation

The enthlpy change when 1 moleofrodut os formednfrom it's elements in their standards states and under standard conditions

Bond dissociation enthalpy

The enthalpy change when all bonds of the same type in 1 mole of gaseous molecules are broken

Enthlpy change of atomisation of an element

The enthalpy change when 1 mole of gaseous atoms is formed from an element in its standard state

Enthalpy change of atomisation of a compound

The enthalpy change when 1 mole of a compoundin its standard state is converted to gaseous atoms

First ionisation enthalpy

Th enthalpy change when 1 mole of gaseous 1+ ions are formed from 1 mole of its gaseous atoms

Second ionisation enthalpy

The enthalpy change when 1 mole of gaseous 2+ ions is formed from 1 mole of gaseous 1+ ions

First electron affinity

Enthalpy change when 1 mole of gaseous 1- atom is formed from mole of its gaseous atoms

Second electron affinity

enthalpy change when 1 mole of gaseous 2- ions is made from 1 mole of gaseous 1- ions

Enthalpy change of hydration

Enthalpy change when 1 mole of aqueous ions is formed from gaseous ions

Enthalpy change of solution

Enthalpy change when 1 mole of solute is dissolved in sufficient solvent that no further ethalpy change occurs on further dilution

Enthalpy change

The heat energy transferred in a reaction at constant pressure

Lattice formation enthalpy

Enthalpy change when 1 mole of a solid ionic compound is formed from it's gaseous ions under standard conditions

Lattice dissociation enthalpy

The enthalpy change when 1 mole of a solid ionic compound is completely dissociated into it's ions under standard conditions

Mean bond enthalpy

The average energy required to break a bond of a particular type over a range of compounds it can be found in

Entropy

The measure of disorder

Free energy change

A measure of whether a reaction is feasible, linking entropy and enthalpy. To be feasible reaction must have a negative free energy value