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Revision as of 22:06, 30 November 2009 by 128.2.154.171 (talk) (→Derivation of normalisation: never use less than-equal to with infinity)(diff) ← Previous revision | Latest revision (diff) | Newer revision → (diff)In quantum mechanics, wave functions which describe real particles must be normalisableTemplate:Fn: the probability of the particle to occupy any place must equal 1. Mathematically, in one dimension this is expressed as
in which the integration parameters A and B indicate the interval in which the particle must exist.
All wave functions which represent real particles must be normalisable, that is, they must have a total probability of one - they must describe the probability of the particle existing as 100%. This trait enables anyone who solves the Schrödinger equation for certain boundary conditions to discard solutions which do not have a finite integral at a given interval. For example, this disqualifies periodic functions as wave function solutions for infinite intervals, while those functions can be solutions for finite intervals.
Derivation of normalisation
In general, is a complex function. However,
is real, greater than or equal to zero, and is known as a probability density function.
This means that
- Failed to parse (SVG (MathML can be enabled via browser plugin): Invalid response ("Math extension cannot connect to Restbase.") from server "http://localhost:6011/en.wikipedia.org/v1/":): {\displaystyle p(-\infty \l x \l \infty) = \int_{-\infty}^{\infty} \mid \psi \mid ^2 dx. \quad (1)}
where is the probability of finding the particle at . Equation (1) is given by the definition of a probability density function. Since the particle exists, its probability of being anywhere in space must be equal to 1. Therefore we integrate over all space:
- Failed to parse (unknown function "\l"): {\displaystyle p(-\infty \l x \l \infty) = \int_{-\infty}^{\infty} \mid \psi \mid ^2 dx = 1. \quad (2)}
If the integral is finite, we can multiply the wave function, , by a constant such that the integral is equal to 1. Alternatively, if the wave function already contains an appropriate arbitrary constant, we can solve equation (2) to find the value of this constant which normalises the wave function.
Plane-waves
Plane waves are normalised in a box or to a Dirac delta in the continuum approach.
Example of normalisation
A particle is restricted to a 1D region between and ; its wave function is:
To normalise the wave function we need to find the value of the arbitrary constant ; i.e., solve
to find .
Substituting into we get
so,
therefore;
Hence, the normalised wave function is:
Proof that wave function normalisation doesn't change associated properties
If normalisation of a wave function changed the properties associated with the wave function, the process becomes pointless as we still cannot yield any information about the properties of the particle associated with the un-normalised wave function. It is therefore important to establish that the properties associated with the wave function are not altered by normalisation.
All properties of the particle such as: probability distribution, momentum, energy, expectation value of position etc.; are derived from the Schrödinger wave equation. The properties are therefore unchanged if the Schrödinger wave equation is invariant under normalisation.
The Schrödinger wave equation is:
If is normalised and replaced with , then
- and
The Schrödinger wave equation therefore becomes:
which is the original Schrödinger wave equation. That is to say, the Schrödinger wave equation is invariant under normalisation, and consequently associated properties are unchanged.
Note
Template:FnbThe spelling normalizable is an American variant spelling of normalisable.