Paper 3, Section I, E
For an ideal gas of fermions of mass in volume , and at temperature and chemical potential , the number density and kinetic energy are given by
where is the spin-degeneracy factor, is Planck's constant, is the single-particle energy as a function of the momentum , and
where is Boltzmann's constant.
(i) Sketch the function at zero temperature, explaining why for (the Fermi momentum). Find an expression for at zero temperature as a function of .
Assuming that a typical fermion is ultra-relativistic even at zero temperature, obtain an estimate of the energy density as a function of , and hence show that
in the ultra-relativistic limit at zero temperature.
(ii) A white dwarf star of radius has total mass , where is the proton mass and the average proton number density. On the assumption that the star's degenerate electrons are ultra-relativistic, so that applies with replaced by the average electron number density , deduce the following estimate for the star's internal kinetic energy:
By comparing this with the total gravitational potential energy, briefly discuss the consequences for white dwarf stability.