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Aspects of Diracʹs Relativistic Frank Rioux

This tutorial provides a brief summary of the last chapter of C. W. Sherwinʹs excellent Introduction to Mechanics which deals with relativistic . The relativistic equation for the energy of a free particle has positive and negative roots, where the positive root signifies the energy of a particle and the negative root the energy of its antiparticle. This interpretation was confirmed experimentally with the discovery of the anti‐electron (positron) in 1932 by Anderson.

222 22 ()1 E cpppmcxyz   

Dirac converted this to a soluble quantum mechanical by first writing the argument of the square root as a perfect square in order to get rid of the troubling radical operator which defied physical interpretation. In a second step he replaced energy and momentum with their differential operators, E = ‐(h/2i)d/dt and pq = (h/2i)d/dq, from non‐relativistic quantum mechanics.

2 2 2 2 2 2 px  py  pz  m c = αxpx  αypy  αzpz  βmc

2 2 2 2 For this mathematical maneuver to be valid the following conditions must hold: αx = αy = αz = β = 1

αxαy  αyαx = 0 αxαz  αzαx = 0 αxβ  βα x = 0 αyαz  αzαy = 0

αyβ  βα y = 0 αzβ  βα z = 0 pxpy = pypx pxpz = pzpx pypz = pzpy

In other words, the s and must anticommute while the momentum operators as used above must commute. From the non‐relativistic formulation of quantum mechanics it was already clear that the momentum operator pairs above did commute. In formulating a relativistic quantum mechanics, Dirac assumed the validity of the various multiplicative and differential operators of non‐relativistic quantum mechanics for properties like energy, position and momentum.

Being cognizant of Heisenbergʹs matrix approach to non‐relativistic quantum mechanics, Dirac realized the restrictions above regarding the s and  could be satisfied by the following 4x4 matrices.

 0 0 0 1   0 0 0 i   0 0 1 0   1 0 0 0           0 0 1 0   0 0 i 0   0 0 0 1   0 1 0 0  αx  αy  αz  β   0 1 0 0   0 i 0 0   1 0 0 0   0 0 1 0           1 0 0 0   i 0 0 0   0 1 0 0   0 0 0 1 

2 2 2 2 First we show that αx = αy = αz = β = I where I is the identity operator.

 1 0 0 0    0 1 0 0 I     0 0 1 0     0 0 0 1   1 0 0 0   1 0 0 0   1 0 0 0   1 0 0 0          0 1 0 0 0 1 0 0 0 1 0 0 0 1 0 0 α α    α α    α α    ββ    x x  0 0 1 0  y y  0 0 1 0  z z  0 0 1 0   0 0 1 0           0 0 0 1   0 0 0 1   0 0 0 1   0 0 0 1 

Now we show that the s and  anticommute:

 0 0 0 0   0 0 0 0   0 0 0 0        0 0 0 0 0 0 0 0 0 0 0 0 α α  α α    α α  α α    α β  βα    x y y x  0 0 0 0  x z z x  0 0 0 0  x x  0 0 0 0         0 0 0 0   0 0 0 0   0 0 0 0 

 0 0 0 0   0 0 0 0   0 0 0 0        0 0 0 0 0 0 0 0 0 0 0 0 α α  α α    α β  βα    α β  βα    y z z y  0 0 0 0  y y  0 0 0 0  z z  0 0 0 0         0 0 0 0   0 0 0 0   0 0 0 0 

It is now possible to write Diracʹs relativistic energy equation as follows:

()2 E cpxx  yy p  zz p  mc

Before proceeding to the next step, the substitution of the differential operators for energy and momentum, it is instructive to look at the right side of the above equation which is a 4x4 Dirac relativistic energy operator. Of course, the left side is a 4x4 matrix with E on the diagonal and zeros everywhere else.

 2   c m 0 cp z cpx  pyi   2   0 c m cpx  pyi cp z  c α p  α p  α p  βmc    ()3 x x y y z z 2  cp z cpx  pyi c m 0     2  cpx  pyi cp z 0 c m 

Substituting the traditional operators for energy and momentum yields,

c     2   xyz  mc   ()4 it i x y z 

Assuming the separability of the space and time coordinates [(x,y,z,t) = (x,y,z)(t)], this four dimensional differential equation is decoupled in to two differential equations. The time‐dependent equation is easily solved and has the following solution. E t i ()te  ()5

The space part of the differential equation has the following form, with the relativistic Hamiltonian operating on the .

c  2  xyz mc E ()6 ixyz

As demonstrated above (eqn 3) the relativistic energy operator is a 4x4 matrix. Therefore, the wave function must be a four‐component vector.

At this point Sherwin turns to the example of the free particle in the x‐direction (see pages 292‐295). He assumes that the solution has the form of a plane wave. However, as shown below substitution of the deBroglie equation in the plane wave equation yields the momentum eigenfunction in coordinate space.

 h 2 p px expix exp  i   This means that this problem is extremely easy to solve in momentum space where the momentum operator is multiplicative. The calculation of the energy eigenvalues is straight forward using Mathcadʹs eigenvals command. We simply ask for the eigenvalues of the relativistic energy operator as shown below.

 2 2 2   cc m  px   2 2 2   cc m  px  eigenvals cαxpx  βmc       2 2 2  cc m  px     2 2 2   cc m  px 

Calculation of the (unnormalized) eigenvectors is equally easy.

2 2  Wmc  W  mc   0 0   pxc pxc    2 2 eigenvecs c α p  βmc =  Wmc  W  mc  2 2 2 4  x x  0 0 Wp= c  m c  p c p c  x  x x   0 1 1 0     1 0 0 1 