The Born equation can be used for estimating the electrostatic component of
Gibbs free energy
In thermodynamics, the Gibbs free energy (or Gibbs energy; symbol G) is a thermodynamic potential that can be used to calculate the maximum amount of work (physics), work that may be performed by a closed system, thermodynamically closed system a ...
of
solvation of an ion. It is an electrostatic model that treats the solvent as a continuous dielectric medium (it is thus one member of a class of methods known as
continuum solvation methods).
It was derived by
Max Born
Max Born (; 11 December 1882 – 5 January 1970) was a German physicist and mathematician who was instrumental in the development of quantum mechanics. He also made contributions to solid-state physics and optics and supervised the work of a ...
.
where:
*''N''
A =
Avogadro constant
*''z'' = charge of ion
*''e'' =
elementary charge
The elementary charge, usually denoted by is the electric charge carried by a single proton or, equivalently, the magnitude of the negative electric charge carried by a single electron, which has charge −1 . This elementary charge is a funda ...
, 1.6022
C
*''ε''
0 =
permittivity of free space
*''r''
0 = effective
radius of ion
*''ε''
r = dielectric constant of the solvent
Derivation
The
energy U stored in an electrostatic field distribution is:
Knowing the magnitude of the electric field of an ion in a medium of dielectric constant ''ε''
r is
and the volume element
can be expressed as
, the energy
can be written as:
Thus, the energy of solvation of the ion from gas phase (''ε''
r =1) to a medium of dielectric constant ''ε''
r is:
References
External links
aspects about this equation
Enthalpy
Max Born
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