332 - Pr 5-4 - Finite Rotations Are Similarity Transforms

(  j )

(  j )

1) argue that the eigenvalues of  J  x , y  are the same as that of  J  z   (namely:  j , ( j  1) , ..., (  j ) . Blah diddly blah blah — symmetry. symmetry. ( j)   J . Generalize the result to  ˆ  ( j)   J  be related to  J  z   by a unitary similarity transformation, In order to preserve normalization, let  ˆ 

ˆ      J

( j)

†

 U J z U 

[ .1] 1

†

 Note that we we know the eigenvalue eigenvalue relation, relation, which we can front-multiply front-multiply by U, and insert insert I  U U  U U  , and having [ .1] at the ready,

 J z m  m  m

UJ z U †U m  m  U m



( ˆ  J (  j ) ) †U m  m  U m



  J  Note that this implies implies U m  is an eigenket of the (Hermitian!) operator ( ˆ 

[ .2]

(  j ) †

) , with the same eigenvalues m .

2) Show that the zero operator can be written as, O  ( J 

?????

m  j

j )( J  ( j  1) )( J  ( j  2) )...( J  j )  m j ( J  m )  0  J    ˆ  J ( j )

[ .3] [ .4]

Do a unitary transform to the operator O to make the J into J z, as in [ .1], which can be done by inserting the identiy †

operator I  U U  at ―strategic‖ points in [ .3] to get, O z

†

 U OU  U

†



m  j m  j

I( J



 m )I U  U

†





m  j

m j

UU † ( J  m )UU † U  I m j ( J z   I  m )I m  j

[ .5]

†

Let the operator O z   U OU   act on an arbitrary ket, and let us expand that  – ket ket in the (complete) eigenket basis  jm ,

 jm |   O z jm  jm |  

O z  

m  j

m

 j

( J z   m ) jm

[ .6]

In [ .6], .6], we notice the appearance of a sort of ―complimentary Kronecker delta‖ . Since  j  m   j , we can write the operator eigenrelation,

( J z  m ) jm  (m  m ) jm  (m  m)(1    mm ) jm Putting [ .7] into [ .6], and noting

m  j

m

 j

[ .7]

(1    mm )  0  for  j  m   j , we immediately get, O z   

jm |    0  jm  0

[ .8]

It is then trivial to undo the similarity transformation effected in [ .5],

UO z U †

  U 0U

†



0  UU †OUU †    IOI   O 

 

O

the zero operator 

  [ .9]

2  j 1

3) it follows from the result above that  J 

0

1

2j

 is a linear combination of  J , J ,..., J  . Argue the same goes for

 J 2  j k , k   1, 2,... 2  j 1

huh? This seems useless. It’s obvious that since  J  combination of all the previous J’s.

Do this by mathematical induction. Assume way of sum-index-fiddling, Answer:

 is block-diagonal, you of course have a J being a linear

is true, and this implies the following, by

[ .10]

The proof for

tricky — what is it meant when

follows from just repeating the same induction [ .10]. One of the steps looks a little

????