146We see that this is the same asfound in (S.4.44.12).Since we expecta heat
capacity per degree of freedom of 1/2, we see that there are two degrees of
freedom foreachmolecule sinceTheycorrespond to the tworotational degrees offreedom of aclassicalrod.
(There are no spatial degrees of freedom since the molecule is considered
fixed.)4.45 Two-Level System (Princeton)
a) There is nothingto prevent givingeach atom itslarger energy hence,
has a maximum of 1 with Clearly, thesystem would
not be in thermal equilibrium. To compute the problem inequilibrium,
we need todetermine the partitionfunction,Z. For distinguishable non-
interactingparticles, thepartitionfunctionfactors, so foridenticalenergy
spectraThe free energywould beThe energy isthenor
where Obviously, sinceboth and arepositive, cannot be
largerthan 1. On theother hand, is a monotonicfunction which
SOLUTIONS