Spherical harmonics: Difference between revisions

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imported>Paul Wormer
imported>Paul Wormer
(brackets around m of P)
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In [[mathematics]], '''spherical harmonics''' <math>Y^m_\ell</math>  are an orthogonal and complete set of functions of the [[spherical polar angles]] &theta; and &phi;. In [[quantum mechanics]] they appear as eigenfunctions of [[orbital angular momentum]]. The name is due to Lord [[Kelvin]]. Spherical harmonics are ubiquitous in atomic and molecular physics. They are important in the representation of the gravitational field, geoid, and magnetic field of planetary bodies, characterization of the cosmic microwave background radiation and recognition of 3D shapes in computer graphics.
In [[mathematics]], '''spherical harmonics''' <math>Y^m_\ell</math>  are an orthogonal and complete set of functions of the [[spherical polar angles]] &theta; and &phi;. The name "spherical harmonics" is due to Lord [[Kelvin]].  In [[quantum mechanics]] they appear as eigenfunctions of [[orbital angular momentum]]. Spherical harmonics are ubiquitous in atomic and molecular physics. They are important in the representation of the gravitational field, geoid, and magnetic field of planetary bodies, characterization of the cosmic microwave background radiation and recognition of 3D shapes in computer graphics.
==Definition==
==Definition==
The notation <math>Y^m_\ell</math> will be reserved for functions normalized to unity. It is convenient to introduce first non-normalized functions that are proportional to the <math>Y^m_\ell</math>. Several definitions are possible, we present first one that is common in quantum mechanically oriented texts.  The [[spherical polar angles]] are the colatitude angle &theta; and the longitudinal (azimuthal) angle &phi;. The numbers ''l'' and ''m'' are integral numbers and ''l'' is positive or zero.
The notation <math>Y^m_\ell</math> will be reserved for functions normalized to unity. It is convenient to introduce first non-normalized functions that are proportional to the <math>Y^m_\ell</math>. Several definitions are possible, we start with one that is common in quantum mechanically oriented texts.  The [[spherical polar angles]] are the colatitude angle &theta; and the longitudinal (azimuthal) angle &phi;. The numbers ''l'' and ''m'' are integral numbers and ''l'' is positive or zero.
:<math>
:<math>
C_\ell^m(\theta,\varphi) \equiv i^{m+|m|}\; \left[\frac{(\ell-|m|)!}{(\ell+|m|)!}\right]^{1/2} P^{|m|}_\ell(\cos\theta)  e^{im\varphi}, \qquad -\ell \le m \le \ell,
C_\ell^m(\theta,\varphi) \equiv i^{m+|m|}\; \left[\frac{(\ell-|m|)!}{(\ell+|m|)!}\right]^{1/2} P^{(|m|)}_\ell(\cos\theta)  e^{im\varphi}, \qquad -\ell \le m \le \ell,
</math>
</math>
where <math> P^m_\ell(\cos\theta)</math> is a (phaseless) [[associated Legendre function]].
where <math> P^{(m)}_\ell(\cos\theta)</math> is a (phaseless) [[associated Legendre function]].
The ''m'' dependent phase is known as the Condon & Shortley phase:
The ''m'' dependent phase is known as the Condon & Shortley phase:
:<math>
:<math>
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An alternative definition uses the fact that the associated Legendre functions can be defined (via the Rodrigues formula) for negative ''m'',
An alternative definition uses the fact that the associated Legendre functions can be defined (via the Rodrigues formula) for negative ''m'',
:<math>
:<math>
\tilde{C}_\ell^m(\theta,\varphi) \equiv (-1)^m \left[\frac{(\ell-m)!}{(\ell+m)!}\right]^{1/2} P^{m}_\ell(\cos\theta)  e^{im\varphi}, \qquad -\ell \le m \le \ell,
\tilde{C}_\ell^m(\theta,\varphi) \equiv (-1)^m \left[\frac{(\ell-m)!}{(\ell+m)!}\right]^{1/2} P^{(m)}_\ell(\cos\theta)  e^{im\varphi}, \qquad -\ell \le m \le \ell,
</math>
</math>
The two definitions obviously agree for positive and zero ''m'', but for negative ''m'' this is less apparent. It is also not immediately clear that the  choices of phases yield the same function. However, below we will see that the definitions agree for negative ''m'' as well. Hence, for all ''l'' &ge; 0,
The two definitions obviously agree for positive and zero ''m'', but for negative ''m'' this is less apparent. It is also not immediately clear that the  choices of phases yield the same function. However, below we will see that the definitions agree for negative ''m'' as well. Hence, for all ''l'' &ge; 0,
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we find for the complex conjugate of the spherical harmonic in the first definition  
we find for the complex conjugate of the spherical harmonic in the first definition  
:<math>
:<math>
C_\ell^m(\theta,\varphi)^* = (-1)^m\, i^{-m+|m|}\; \left[\frac{(\ell-|m|)!}{(\ell+|m|)!}\right]^{1/2} P^{|m|}_\ell(\cos\theta)
C_\ell^m(\theta,\varphi)^* = (-1)^m\, i^{-m+|m|}\; \left[\frac{(\ell-|m|)!}{(\ell+|m|)!}\right]^{1/2} P^{(|m|)}_\ell(\cos\theta)
  e^{-im\varphi} = (-1)^m  C_\ell^{-m}(\theta,\varphi).
  e^{-im\varphi} = (-1)^m  C_\ell^{-m}(\theta,\varphi).
</math>
</math>
Complex conjugation gives for the functions of positive ''m'' in the second definition
Complex conjugation gives for the functions of positive ''m'' in the second definition
:<math>
:<math>
\tilde{C}_\ell^{|m|}(\theta,\varphi)^* \equiv (-1)^m \left[\frac{(\ell-|m|)!}{(\ell+|m|)!}\right]^{1/2} P^{|m|}_\ell(\cos\theta)  e^{-i|m|\varphi}.  
\tilde{C}_\ell^{|m|}(\theta,\varphi)^* \equiv (-1)^m \left[\frac{(\ell-|m|)!}{(\ell+|m|)!}\right]^{1/2} P^{(|m|)}_\ell(\cos\theta)  e^{-i|m|\varphi}.  
</math>
</math>
Use of the following non-trivial relation (that does not depend on any choice of phase):  
Use of the following non-trivial relation (that does not depend on any choice of phase):  
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gives
gives
:<math>
:<math>
\tilde{C}_\ell^{|m|}(\theta,\varphi)^* =  \left[\frac{(\ell+|m|)!}{(\ell-|m|)!}\right]^{1/2} P^{-|m|}_\ell(\cos\theta)  e^{-i|m|\varphi}= (-1)^m\tilde{C}_\ell^{-|m|}(\theta,\varphi).  
\tilde{C}_\ell^{|m|}(\theta,\varphi)^* =  \left[\frac{(\ell+|m|)!}{(\ell-|m|)!}\right]^{1/2} P^{(-|m|)}_\ell(\cos\theta)  e^{-i|m|\varphi}= (-1)^m\tilde{C}_\ell^{-|m|}(\theta,\varphi).  
</math>
</math>
Since the two definitions of spherical harmonics coincide for positive ''m'' and complex conjugation gives in both definitions the same relation to functions of negative ''m'', it follows that the two definitions  agree. From here on we drop the tilde and assume both definitions to be simultaneously valid.
Since the two definitions of spherical harmonics coincide for positive ''m'' and complex conjugation gives in both definitions the same relation to functions of negative ''m'', it follows that the two definitions  agree. From here on we drop the tilde and assume both definitions to be simultaneously valid.
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The components of '''L''' satisfy the angular momentum  [[commutation relations]].
The components of '''L''' satisfy the angular momentum  [[commutation relations]].
:<math>
:<math>
[L_i, L_j] = i\sum_{j=1}^3 \epsilon_{ijk}  L_k,
[L_i, L_j] = i\sum_{j=1}^3 \epsilon_{ijk}  L_k,\qquad i,j,k = x,y,z,
</math>
</math>
where &epsilon;<sub>ijk</sub> is the [[Levi-Civita symbol]]. In [[angular momentum theory]] it is shown that these commutation relations are sufficient to prove that the following eigenvalue equation exists,
where &epsilon;<sub>ijk</sub> is the [[Levi-Civita symbol]]. In [[angular momentum theory]] it is shown that these commutation relations are sufficient to prove that ''L''&sup2; has  eigenvalues ''l''(''l''+1),
:<math>
:<math>
(L_x^2+L_y^2+L_z^2) \Psi \equiv L^2 \Psi = \ell(\ell+1) \Psi,
(L_x^2+L_y^2+L_z^2) \Psi \equiv L^2 \Psi = \ell(\ell+1) \Psi,
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This equation has two classes of solutions: the associated Legendre functions of the first and second kind. The functions of the second kind are non-regular for ''x'' = &plusmn;1 and  do not concern us further. The functions of the first kind are the associated Legendre functions:
This equation has two classes of solutions: the associated Legendre functions of the first and second kind. The functions of the second kind are non-regular for ''x'' = &plusmn;1 and  do not concern us further. The functions of the first kind are the associated Legendre functions:
:<math>
:<math>
\Theta(\theta) \propto P^{\pm m}_{\ell}(\cos\theta).
\Theta(\theta) \propto P^{(\pm m)}_{\ell}(\cos\theta).
</math>
</math>
It follows that  
It follows that  
:<math>
:<math>
L^2 \Psi = \ell(\ell+1) \Psi \Longrightarrow \Psi = P^{\pm m}_{\ell}(\cos\theta) e^{\pm i m \varphi}.
L^2 \Psi = \ell(\ell+1) \Psi \Longrightarrow \Psi = P^{(\pm m)}_{\ell}(\cos\theta) e^{\pm i m \varphi}.
</math>
</math>
The eigenvalue equation is invariant under choice of phase and normalization, so these choice must be imposed separately, as was done earlier in this article.
The eigenvalue equation is invariant under choice of phase and normalization, so these choice must be imposed separately, as was done earlier in this article.

Revision as of 03:14, 24 August 2007

In mathematics, spherical harmonics are an orthogonal and complete set of functions of the spherical polar angles θ and φ. The name "spherical harmonics" is due to Lord Kelvin. In quantum mechanics they appear as eigenfunctions of orbital angular momentum. Spherical harmonics are ubiquitous in atomic and molecular physics. They are important in the representation of the gravitational field, geoid, and magnetic field of planetary bodies, characterization of the cosmic microwave background radiation and recognition of 3D shapes in computer graphics.

Definition

The notation will be reserved for functions normalized to unity. It is convenient to introduce first non-normalized functions that are proportional to the . Several definitions are possible, we start with one that is common in quantum mechanically oriented texts. The spherical polar angles are the colatitude angle θ and the longitudinal (azimuthal) angle φ. The numbers l and m are integral numbers and l is positive or zero.

where is a (phaseless) associated Legendre function. The m dependent phase is known as the Condon & Shortley phase:

An alternative definition uses the fact that the associated Legendre functions can be defined (via the Rodrigues formula) for negative m,

The two definitions obviously agree for positive and zero m, but for negative m this is less apparent. It is also not immediately clear that the choices of phases yield the same function. However, below we will see that the definitions agree for negative m as well. Hence, for all l ≥ 0,

Complex conjugation

Noting that that the associated Legendre function is real and that

we find for the complex conjugate of the spherical harmonic in the first definition

Complex conjugation gives for the functions of positive m in the second definition

Use of the following non-trivial relation (that does not depend on any choice of phase):

gives

Since the two definitions of spherical harmonics coincide for positive m and complex conjugation gives in both definitions the same relation to functions of negative m, it follows that the two definitions agree. From here on we drop the tilde and assume both definitions to be simultaneously valid.

Note

If the m-dependent phase would be dropped in both definitions, the functions would still agree for non-negative m. However, the first definition would satisfy

whereas the second would still satisfy

from which follows that the functions would differ in phase for negative m.

Normalization

It can be shown that

The integral over φ gives 2π and a Kronecker delta on and . Thus, for the integral over θ it suffices to consider the case m=m'. The necessary integral is given here. The (non-unit) normalization of is known as Racah's normalization or Schmidt's semi-normalization. It is often more convenient than unit normalization. Unit normalized functions are defined as follows

Condon-Shortley phase

One source of confusion with the definition of the spherical harmonic functions concerns the phase factor. In quantum mechanics the phase, introduced above, is commonly used. It was introduced by Condon and Shortley.[1] In the quantum mechanics community, it is common practice to either include this phase factor in the definition of the associated Legendre functions, or to prefix it to the definition of the spherical harmonic functions, as done above. There is no requirement to use the Condon-Shortley phase in the definition of the spherical harmonic functions, but including it can simplify some quantum mechanical operations, especially the application of raising and lowering operators. The geodesy and magnetics communities never include the Condon-Shortley phase factor in their definitions of the spherical harmonic functions.

Orbital angular momentum

In quantum mechanics the following operator, the orbital angular momentum operator, appears frequently

where the cross stands for the cross product of the position vector r and the gradient ∇. From here on we take Planck's reduced constant equal to unity. The components of L satisfy the angular momentum commutation relations.

where εijk is the Levi-Civita symbol. In angular momentum theory it is shown that these commutation relations are sufficient to prove that L² has eigenvalues l(l+1),

where is a natural number. The operator L² expressed in spherical polar coordinates is,

The eigenvalue equation can be simplified by separation of variables. We substitute

into the eigenvalue equation. After dividing out Ψ and multiplying with sin²θ we get

In the spirit of the method of separation of variables, we put the terms in square brackets equal to plus and minus the same constant, respectively. Without loss of generality we take m² as this constant (m can be complex) and consider

This has the solutions

The requirement that exp[i m (φ + 2π)] = exp[i m φ] gives that m is integral. Substitution of this result into the eigenvalue equation gives

Finally, upon writing x = cos θ the equation becomes the associated Legendre equation

This equation has two classes of solutions: the associated Legendre functions of the first and second kind. The functions of the second kind are non-regular for x = ±1 and do not concern us further. The functions of the first kind are the associated Legendre functions:

It follows that

The eigenvalue equation is invariant under choice of phase and normalization, so these choice must be imposed separately, as was done earlier in this article. Finally, noting that

we summarize the two important relations holding for spherical harmonics:

  1. E. U. Condon and G. H. Shortley,The Theory of Atomic Spectra, Cambridge University Press, Cambridge UK (1935).