PlanetPhysics/Rayleigh Ritz Method

The Rayleigh-Ritz method is an [[../RecursiveFunction/|algorithm]] for obtaining approximate solutions to eigenvalue ODEs. It can be neatly summarized as follows:

1. Choose an approximate form for the eigenfunction with the lowest eigenvalue (the ground state wavefunction, in the language of [[../QuantumParadox/|quantum mechanics]]). Include one or more free [[../Parameter/|parameters]].
2. Find the expectation value of the eigenvalue with respect to the trial eigenfunction.
3. Minimize the resulting equation with respect to the free parameter(s), hence finding a value for the free parameter.
4. Substitute this new eigenfunction back into the expectation value.
5. The expectation value obtained is an upper bound for the actual eigenvalue of the true eigenfunction.

Consider the [[../TimeIndependentSchrodingerEquation/|time independent Schr\"odinger equation]] for a one-dimensional harmonic oscillator potential:

${\displaystyle (-\frac{{\hslash }^2}{2m}\frac{{\partial }^2}{\partial x^2}+\frac{1}{2}{m}^2{\omega }^2)\psi =E\psi }$

where ${\displaystyle m}$ is the [[../CosmologicalConstant/|mass]] of the [[../Particle/|particle]] in the well, and ${\displaystyle \omega }$ is the angular [[../Velocity/|velocity]] a classical particle would move with in the well. This equation can be solved exactly using [[../FrobeniusMethod/|Frobenius' method]], and leads to eigenfunctions of the form of [[../HermitePolynomials/|Hermite polynomials]] multiplied by Gaussians, and half-integer eigenvalues of the form ${\displaystyle E_n=(n+1/2)\hslash \omega }$. Since the solutions are known, it is a good test case. We choose the ground state wavefunction of the infinite potential well as our trial eigenfunction:

${\displaystyle \psi =\frac{\cos (\frac{\pi x}{2a})}{\sqrt{a}}}$

with ${\displaystyle a}$ as our free parameter. We now find the expectation value:

${\displaystyle ⟨E⟩=⟨\psi |\hat{H}|\psi ⟩={\displaystyle \underset{-a}{\overset{a}{\int }}}{\psi }^{*}\hat{H}\psi dx}$

Evaluating the integral, we find

${\displaystyle ⟨E⟩=\frac{{\hslash }^2{\pi }^2}{8m{a}^2}+m{\omega }^2{a}^2(\frac{1}{6}-\frac{1}{p{i}^2})}$

We now minimise this with respect to ${\displaystyle a}$ to obtain:

${\displaystyle 2m{\omega }^{2}a(\frac{1}{6}-\frac{1}{{\pi }^2})=\frac{{\hslash }^2{\pi }^2}{4m{a}^2}}$

Hence:

${\displaystyle a=\pi {\left(\frac{3}{4({\pi }^2-6)}\right)}^{\frac{1}{4}}{\left(\frac{\hslash }{m\omega }\right)}^{\frac{1}{2}}}$

Substituting this into the expecation value ${\displaystyle ⟨E⟩}$ we obtain

${\displaystyle ⟨E⟩=\frac{1}{2}{\left(\frac{{\pi }^2-6}{3}\right)}^{\frac{1}{2}}\hslash \omega }$

${\displaystyle ⟨E⟩\approx 0.568\hslash \omega }$

The analytical value is of course ${\displaystyle 0.5\hslash \omega }$. Considering the crudeness of the approximation used, the result is impressive.

Template:CourseCat