The total Hamiltonian we are aiming at, is the integral of the Hamiltonian density.
H=
∫
d^3 xHWhen we integrate over the volume only products likeeikρxρe−ikρxρwill give a nonzero result. So
when we multiply one sum overkby another, only the terms with the samekwill contribute to the
integral, basically because the waves with different wave number areorthogonal.
1
V∫
d^3 x eikρxρe−ik′ρxρ
=δkk′H =
∫
d^3 xHH = −
∂Aμ
∂x 4∂Aμ
∂x 4
∂Aμ
∂x 4= −
1
√
V
∑
k∑^2
α=1ǫ(μα)(
ck,α(0)ω
c
eikρxρ−c∗k,α(0)ω
c
e−ikρxρ)
H = −
∫
d^3 x∂Aμ
∂x 4∂Aμ
∂x 4H = −∫
d^3 x1
V
∑
k∑^2
α=1(
ck,α(0)ω
ceikρxρ−c∗k,α(0)ω
ce−ikρxρ) 2
H = −
∑
k∑^2
α=1(ω
c) (^2) [
−ck,α(t)c∗k,α(t)−c∗k,α(t)ck,α(t)
]
H =
∑
k∑^2
α=1(ω
c) 2 [
ck,α(t)c∗k,α(t) +c∗k,α(t)ck,α(t)]
H =
∑
k,α(ω
c) (^2) [
ck,α(t)c∗k,α(t) +c∗k,α(t)ck,α(t)
]
This is theresult we will use to quantize the field. We have been carefulnot to commutec
andc∗here in anticipation of the fact that they do not commute.
It should not be a surprise that the terms that made up the Lagrangian gave a zero contribution
becauseL=^12 (E^2 −B^2 ) and we know that E and B have the same magnitude in a radiation field.
(There is one wrinkle we have glossed over; terms with~k′=−~k.)
33.4 Canonical Coordinates and Momenta
We now have theHamiltonian for the radiation field.
H=
∑
k,α(ω
c) (^2) [
ck,α(t)c∗k,α(t) +c∗k,α(t)ck,α(t)