130_notes.dvi

∣ ∣ ∣ ∣ ∣ ∣

−b 1 0

1 −b 1

0 1 −b

∣ ∣ ∣ ∣ ∣ ∣

= 0

wherea=√ ̄h 2 b.

−b(b^2 −1)−1(−b−0) = 0

b(b^2 −2) = 0

There are three solutions to this equation:b= 0,b= +

√

2, andb=−

√

2 ora= 0,a= + ̄h, and
a=− ̄h. These are the eigenvalues we expected forℓ= 1. For each of these three eigenvalues, we
should go back and find the corresponding eigenvector by using thematrix equation.



0 1 0

1 0 1

0 1 0









ψ 1

ψ 2

ψ 3



=b





ψ 1

ψ 2

ψ 3









ψ 2

ψ 1 +ψ 3

ψ 2



=b





ψ 1

ψ 2

ψ 3





Up to a normalization constant, the solutions are:

ψ+ ̄h=c





√^1

2

1

√^1

2



 ψ0 ̄h=c





1

0

− 1



 ψ− ̄h=c





−√ 1

2

1

−√ 1

2



.

We should normalize these eigenvectors to represent one particle.For example:

〈ψ+ ̄h|ψ+ ̄h〉 = 1

|c|^2

( 1

√

2

∗

1 ∗ √^12

∗)





√^1

2

1

√^1

2



 = 2|c|^2 = 1

c =

1

√

2

Try calculating the eigenvectors ofLy.
You already know what the eigenvalues are.

18.10.5A 90 degree rotation about the z axis.

If we rotate our coordinate system by 90 degrees about the z axis, the old x axis becomes the new
-y axis. So we would expect that the state with angular momentum + ̄hin the x direction,ψ(+x), will

rotate intoψ(−y)within a phase factor. Lets do the rotation.

Rz(θz) =





eiθz 0 0

0 1 0

0 0 e−iθz



.

Rz(θz= 90) =





i 0 0

0 1 0

0 0 −i



.