CHEM2912 Lecture Notes - Lecture 1: Particle Number, Identical Particles, Thermodynamics

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CHEM2912
Chemical structure & Stability
Monica Zanuttini !
460381099
Lecture 1 Statistical Thermodynamics
A state of a molecule is the amount of energy in each of its degrees of freedom. !
State specified by electronic configuration, vibrational quantum number v, rotational quantum
number J, and a translational quantum state. !
Total energy of molecule is the sum of the energies of each degree of freedom. !
We have incomplete knowledge of a system of molecules, as we are limited to properties such as
number of molecules, temperature, pressure, energy and volume. This does not give any
information of the individual molecules. !
Q: The number of possible micro states in a system of N identical particles with a total of E quanta
of energy is equivalent to? !
A: How many ways can $1.00 coins be deposited in N accounts. !
Every microstate and configuration must satisfy the constraints of total particle number, N, and
total energy, E. !
!
Total particle number (sum of the number of molecules in each state):!
!
Total energy in system (sum of the number of molecules in each state times the energy of that
state): !
!
!
Number of Microstates (that occur for a given allowed configuration i.e. occupation numbers):
:!
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Document Summary

A state of a molecule is the amount of energy in each of its degrees of freedom. State speci ed by electronic con guration, vibrational quantum number v, rotational quantum number j, and a translational quantum state. Total energy of molecule is the sum of the energies of each degree of freedom. We have incomplete knowledge of a system of molecules, as we are limited to properties such as number of molecules, temperature, pressure, energy and volume. This does not give any information of the individual molecules. A: how many ways can . 00 coins be deposited in n accounts. Every microstate and con guration must satisfy the constraints of total particle number, n, and total energy, e. Total particle number (sum of the number of molecules in each state): Total energy in system (sum of the number of molecules in each state times the energy of that state):

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