We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but...

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Transcript of We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but...

Page 1: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 2: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 3: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 4: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 5: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.

We will call μ the Chemical Potential

Right now we will think of it as the molar free energy, but we will refine this definition later…

Free Energy of a Gas

‘Define’ the molar Gibbs free Energy, μ:

GnG

Pseudo-definition

Page 6: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 7: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.

Note: this is a little sloppy:

Really:

μ(T,p) = μ0(T) + RT ln (p/p0)

(argument of ln dimensionless)

I (and many others) will continue to be sloppy in this regard, so remember p is in the units defined by the Standard State !!!

The above holds for an Ideal Gas, Only!!!

Page 8: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.

We can now use any relation that we derive for an ideal gas mixture for real gases --- just replace p with f everywhere.

f (the ‘effective pressure’) cannot be read on a gauge but must be evaluated from an EOS!

Standard state

Page 9: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 10: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 11: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.

Chemical Reactions and Free Energy

Page 12: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 13: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 14: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.

Holds for any ideal mixture, not just gases

Page 15: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 16: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 17: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 18: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 19: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.

For an IDEAL MIXTURE (even liquids/solids):

Gmix is solely the result of the increase in Entropy!Hmix = 0 Vmix = 0

Danger!This is not always the case: (Ethanol/Water for example)

Page 20: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 21: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 22: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 23: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 24: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 25: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 26: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 27: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 28: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.

Important Features of the Equilibrium Constant

•The Equilibrium Constant is a function of temperature only

•All pure phases are ignored in the Equilibrium expression (exact)

•The concentration of the solvent is ignored in solution equilibrium (approximation)

•The Equilibrium Constant is taken as a dimensionless number with all concentration values referenced to a standard state (Standard state arbitrary but its choice has numerical consequence)

Page 29: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.

Consider any reaction (even solution phase) whose constituents can be considered an ideal mixture

aA + bB ↔ cC + dD

The free energy change will be:

where

At equilibrium, G=0 and K≡Q

Which defines the ‘equilibrium expression’

or

Page 30: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.

In analogy to what we did for real gases, we can define an ‘effective concentration’ for real solutions called the activity, and replace the concentration with it everywhere

Page 31: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.

A note on KC and Kp: The equilibrium constant is taken as a dimensionless

number that is a function of temperature only. Since there are no units, we must be careful to reference the proper definition of concentration (molecular number density). For gases, the concentration may be quoted as pressure (atm) or molarity (mol/l). If the standard of concentration is 1 mol/L, we say the equilibrium constant is KC, if the standard is 1 atm pressure, the equilibrium

constant is labeled Kp

Recall the definition of KC:

The proper quotient of equilibrium partial pressures, assuming the ideal gas equation of state (pV=nRT) (only choice, really) is:

Page 32: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.

Therefore, the numerical value of the equi8librium constant depends on the choice of standard state and the temperature through a difference in the number of gas phase moles between products and reactants:

Page 33: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.

Recall The temperature Dependence of G??

Page 34: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 35: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 36: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 37: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 38: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 39: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 40: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 41: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 42: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 43: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 44: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 45: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 46: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 47: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 48: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 49: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.
Page 50: We will call μ the Chemical Potential Right now we will think of it as the molar free energy, but we will refine this definition later… Free Energy.

Fin