17.4
The components of a substance have kinetic energy, which appears as different types of molecular motion, including translational, rotational, and vibrational motion.
With greater molecular motion, a substance has more ways to distribute the kinetic energy among its components; that is, it has a greater number of possible microstates.
The third law of thermodynamics states that at zero Kelvin, also known as absolute zero, the entropy of a pure, perfectly crystalline substance is zero.
At zero Kelvin, the components of a crystal have no kinetic energy and no molecular motion, meaning that they can only occupy one fixed position.
Thus, these components have a singular microstate, and W is equal to 1. Solving Boltzmann’s equation, the entropy is equal to zero.
There are two major consequences of the third law of thermodynamics.
First, at temperatures greater than absolute zero, the entropy of all substances must be positive. Second, all entropy values can be measured against a fixed reference point—the entropy at absolute zero.
Using this reference, the standard molar entropy, S°, is the entropy of 1 mole of a substance under standard state conditions. Values for the standard molar ent
A pure, perfectly crystalline solid possessing no kinetic energy (that is, at a temperature of absolute zero, 0 K) may be described by a single micros…
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