PHY 396 K. Solutions for homework set #3. Problem 1a: The Hamiltonian 7.1 of a free relativistic particle and hence the evolution operator exp itĥ are functions of the momentum operator ˆp, so they diagonalize in the momentum basis. In the non-relativistic normalization of k states, Ĥ d 3 k k ωk k, π 3 exp iĥt d 3 k π 3 k exp itωk k, S.1 where ωk k + M. therefore Ux y; t x exp iĥt y In the same non-relativistic normalization x k expikk, d 3 k exp ix yk itωk. π 3 S. To simplify this 3D integral, let s use spherical coordinates k, θ, φ where k k and θ is the angle between k and x y. In these coordinates d 3 k dk k d cos θ dφ, k x y rk cos θ, S.3 and hence d cos θ dφ e ikx y π +1 1 d cos θ e ikr cos θ π irk e +irk e irk. S.4 Consequently, for any symmetric function fk f k we have d 3 k π 3 eikx y f k 1 4π 0 1 4π i r dk k 1 irk 0 + e +irk e irk fk dk k e +irk fk e irk fk f k 1 4π dk k e +irk fk. i r S.5 1
In particular, for the fk e itωk f k we have Ux y; t d 3 k π 3 eikx y e iωk + 1 4π dk k e +irk e iωk i r S.6 in accordance with eq. 7.3. Problem 1b: As explained in my notes on the saddle point method, integrals of the form I dz fz e Agz Γ S.7 in the large A limit become I e Agz0 πη fz0 η Ag z 0 1 + OA 1. S.8 In general, f and g are complex analytic functions of a complex variable z which is integrated over some contour Γ; quite often Γ is the real axis, but one should allow for its deformation in the complex plane. In eq. S.8, z 0 is a saddle point of gz where the derivative g z 0 0; this saddle point does not have to lie on the original integration contour Γ if it does not, we deform the contour Γ Γ so that Γ does go through the z 0. If several saddle points are present near the contour Γ, the point with the largest Re g dominates the integral. Finally, η is the direction dz of the Γ at the saddle point z 0 ; it should be chosen such that Re η g z 0 0, which assures that Γ crosses z 0 as a mountain path, from a valley to the lowest crossing point to another valley. For the integral 7.3 at hand, we identify A t, gk i r t k iωk, fk k 4π i r. S.9 The saddle point in the k plane follows from dg dk ir t idω dk ir t i k ω 0. S.10
For r < t this equation has a real solution, namely k 0 M r t r, ωk t 0 M t r. S.11 At this point Agk 0 irk 0 itωk 0 im r t t r im t k, fk 0 im 4π 1 t r, Ag k 0 it M ω 3 k 0 t r 3/ imt, S.1 and the direction of the integration contour at k 0 should be in the fourth quadrant of the complex plane, argη between 0 and π/; the real-axis contour is marginally OK. Substituting all these data into eq. S.8 gives us πη fz0 η Ag z 0 im3/ t 4π 3/ t r 5/4 S.13 and therefore Ux y; t exp im t r im3/ 4π 3/ in accordance with eq. 7.4. t t r 5/4 1 + O 1 M t r S.14 Problem 1c: Again, we use the saddle point method to evaluate the integral 7.3. That is, we identify A, gk, and fk according to eq. S.9, and solve eq. S.10 to find the saddle point. But this time, for r > t the saddle point is imaginary k 0 imr r t, ωk 0 imt r t, S.15 so the integration contour must be deformed away from the real axis. At the saddle 3
point S.15, Agk 0 irk 0 itωk 0 M r t, fk 0 M 4π 1 r t, Ag k 0 it M ω 3 k 0 + r t 3/ Mt, S.16 all all real, and the deformed contour should cross k 0 in the imaginary direction, argη π ± π 4. Consequently, in eq. S.8 πη fz0 η Ag z 0 +im 3/ t 4π 3/ r t 5/4 S.17 and therefore Ux y; t exp M r t im 3/ 4π 3/ in accordance with eq. 7.5. t r r t 5/4 1 + O 1 M r t S.18 Note that the exponential factor here decays as one goes further outside the future light cone. In other words, the probability of a relativistic particle moving faster than light is exponentially small. But tiny as it is, this probability does not vanish, and this violates the relativistic causality. Problem a: The relations  k,  k,, Ê k, Ê k, follow from the hermiticity of quantum fields Âx and Êx, and also and from the third eq. 7.11 for the polarization vectors e ±k:  k, d 3 x e +ikx e k  x d 3 x e i kx e k   k,, S.19 and likewise Ê k, d 3 x e +ikx e k Ê x d 3 x e i kx e k Ê Ê k,, S.0 4
The equal-time commutation relations follow from eqs. 7.6: Obviously, [Âk,, Âk, ] 0, [Êk,, Êk, ] 0. S.1 Less obviously, [Âk,, Ê k, ] d 3 x d 3 y e ikx e k i e +ik y e k j [  i x, Êj y] d 3 x d 3 y e ikx e k i e +ik y e k j iδ 3 x yδ ij i d 3 x e ik k x e k e k S. iπ 3 δ 3 k k e k e k iπ 3 δ 3 k k δ,, or equivalently, [Âk,, Êk, ] +iπ3 δ 3 k + k δ,. S.3 Problem b: There are four terms in the Hamiltonian density 7.7, so let us consider them one by one. Combining Fourier transform with decomposition into polarization modes, it is easy to see that in light of eq. 7.9, and likewise d d 3 x Ê 3 k x π 3 Ê k,êk, d d 3 x  3 k x π 3  k,âk,. S.4 S.5 Furthermore, using eq. 7.10 we obtain d 3 k Âx π 3 e ikx ik e k k e k Âk, S.6 5
and hence d 3 x d 3 k Âx π 3 k  k,âk,. S.7 Finally, the first eq. 7.11 gives us d 3 k Êx π 3 e ikx ik e k i k δ,0 Êk, S.8 and hence d 3 x d 3 k Êx π 3 k Ê k,0êk,0. S.9 Altogether, the Hamiltonian 7.7 totals up to d 3 k 1 Ĥ π 3 + k m δ,0 Ê k,êk, + m + k d 3 k Ck, π 3 Ê k,êk, + ω k  C k,âk,, k,  k,âk, S.30 precisely as in eq. 7.13. Problem c: Given eqs. S.1 and S.3, we have C k, [â k,, â k, ] iω k [Âk,, C Êk, ] +iπ3 δ 3 k + k δ, k, C k, + iω k [Êk,, C Âk, ] iπ3 δ 3 k + k δ, k, ω k π 3 δ 3 k + k δ, ω k π 3 δ 3 k + k δ, 0. S.31 6
Likewise, [â k,, â k, ] 0. On the other hand, [â k,, â C k, k, ] +iω k [Âk, C, Ê k, ] iπ 3 δ 3 k k δ, k, C k, + iω k [Êk, C,  k k,, ] +iπ 3 δ 3 k k δ, S.3 ω k π 3 δ 3 k k δ, + ω bk π 3 δ 3 k k δ, ω k π 3 δ 3 k k δ,. Q.E.D. Problem d: Given the operators â k, and â k, defined according to eqs. 7.14, we have â k,âk, ω k  C k,âk, + C k, Ê k,êk, + iω k Ê k,âk, iω k  k,êk,. S.33 k, Consequently, d 3 k π 3 ω k â ω k,âk, k d 3 k π 3 + Ck, d 3 k iω k π 3 Ê k,êk, + ω k  C k,âk, k, Ê k,âk,  k,êk,, S.34 where the first integral on the RHS is the Hamiltonian operator 7.13. Therefore, to verify eq. 7.15 we need to show that the second integral Ĥ def d 3 k iω k π 3  k,êk, Ê k,âk, S.35 is a c-number constant. 7
The trick here is to change the integration variable k k in the the first term in the integrand of eq. S.35 and then apply eqs. S.19 and S.0: d 3 k π 3 Consequently iω k  k,êk, d 3 k π 3 iω k  k,ê k, d 3 k π 3 iω k  +k, Ê +k,. S.36 Ĥ d 3 k π 3 d 3 k π 3 E vacuum iω k Âk, Ê k, Ê k,âk, [Âk,, Ê k, ] ω k π3 δ 3 k k 0 S.37 which is indeed a c-number constant, albeit badly divergent. Q.E.D. Physically, the vacuum energy S.37 is the net zero-point energy of all the oscillatory modes of the vector field theory. This energy is infinite for two reasons, one having do do with the infinite volume of space and the other with its perfect continuity. The infinite-volume divergence of d 3 x of a constant vacuum energy density manifest itself via the π 3 δ 3 0 factor, which is simply the Fourier transform of d 3 x1. Indeed, had we quantized the theory in a very large but finite box, we would have obtained the L 3 volume factor in eq. S.37 instead of the delta function. In other words, the vacuum has energy density Energy Volume Vacuum d 3 k π 3 ω k d 3 k π 3 3ω k. S.38 Alas, this integral diverges at large momenta so the vacuum energy density is also infinite. This is a generic problem of all Quantum Field Theories in a perfectly continuous space and hence unlimitedly high momenta. Ultimately, this problem should be resolved by the fundamental theory of physics at ultra-short distances, whatever such theory might be. Fortunately, for all practical purposes, we may safely disregard any c-number constant term in the Hamiltonian, even if such term is infinite and that is exactly what we shall do in this class! 8
Problem e: Reversing eqs. 7.14, we have  k, Ck, ω k â k, â k, S.39 and therefore, in the Schrödinger picture, d 3 k Âx π 3 e ikx ω k d 3 k e +ikx π 3 ω k d 3 k π 3 ω k Ck, e k â k, â k, Ck, e k â k, d 3 k π 3 e ikx ω k Ck, e +ikx e k â k, + e ikx e k â k,. Ck, e k â +k, S.40 In the Heisenberg picture, the time-dependence of the quantum field Ax, t follows from the time-dependence of the creation and annihilation operators, â k, t e+itĥâ k, 0e itĥ and â k, t e +itĥâ k, 0e itĥ. S.41 For the free Hamiltonian 7.13, [â k,, Ĥ] ω k â k, â k, t e itω k â k, 0, [â k,, Ĥ] +ω k â k, â k, t e+itω k â k, 0, S.4 similar to the scalar creation and annihilation operators we have studied in class. Consequently, substituting this time dependence into eq. S.40, we arrive at Âx, t d 3 k π 3 ω k d 3 k π 3 ω k in accordance with eq. 7.16. Ck, e +ikx iω kt e k â k, 0 + e ikx+iω kt e k â k, 0 Ck, e ikµxµ e k â k, 0 + e +ikµxµ e k â k, 0 k 0 +ω k S.43 9
Problem f: Eq. 7.8 relates the 3 scalar field Â0 x to the divergence of the electric fields, hence in light of eq. S.8,  0 x Reversing eqs. 9 for the Êk, operator, we have d 3 k π 3 i k m e ikx Ê k,0. S.44 Ê k, i/ â k, + â k,, S.45 Ck, and in particular Consequently, in the Schrödinger picture,  0 x Ê k,0 im â ω k,0 + â k,0. S.46 k d 3 k k π 3 ω k d 3 k π 3 ω k k d 3 k k π 3 ω k m m e+ikx â k,0 + â k,0 m e+ikx â k,0 + e +ikx â k,0 + e ikx â k,0 In the Heisenberg picture, time dependence of the the Â0x, t follows from the timedependent annihilation and creation operators S.4, hence  0 x d 3 k k π 3 ω k m e ikx â +k,0. S.47 d 3 k k e ikx π 3 â ω k m k,0 0 + e +ikx â k,0 0. S.48 k 0 +ω k In light of similarity between eqs. 7.16 and S.48, we may combine them into  µ x where Q.E.D. d 3 k π 3 ω k e ikx f µ k, â k,0 0 + e +ikx f µ k, â k,0 0 fk, C k, e k and f 0 k, k m δ,0. k 0 +ω k 7.17 S.49 10
The polarization 4 vectors S.49 may be written as f µ k, ±1 0, e ±1 k, f µ k, 0 k m, ω k, 7.18 m and it s easy to check that they satisfy conditions 7.19. Likewise, it is easy to check that the f µ k, obtain by Lorentz-boosting a purely-spatial 4-vector 0, e k from the rest frame to the frame of the moving particle. Indeed, the boost with velocity β k ω k γ ω k m S.50 leaves the transverse polarization vectors for ±1 unchanged, e ±1 k k β 0, e ±1 k boost 0, e ±1 k f µ k, ±1, S.51 while the longitudinal polarization vector for 0 becomes e 0 k k k β 0, e 0 k boost βγ, γe0 k k m, ω k m k k f µ k, 0. S.5 Problem g: Each positive-frequency plane-wave mode e ikx f µ k, in eq. 7.17 satisfies + m e ikx f µ k, 0 and µ e ikx f µ k, 0 S.53 because k + m 0 and k µ f µ k, 0. For the same reason, each negative-frequency mode e +ikx f µ k, in eq. 7.17 also satisfies + m e +ikx f µ k, 0 and µ e +ikx f µ k, 0. S.54 From the space-time point of view, the quantum vector field 7.17 is a linear superposition of plane waves satisfying the classical field equations + m µ x 0 and µ  µ x 0. S.55 By linearity of this equations, any linear superposition of solutions is a solution, so the free quantum field does obey the classical field equations. 11
Problem 3a: The simplest way to prove this lemma is by direct inspection, component by component: f i k, f j k, e i ke j k + k m ei 0ke j 0 k δij + ki k j m ; f i k, f 0 k, f i k, 0f 0 k, 0 ki ω k m ; f 0 k, f 0 k, f 0 k, 0 0 k m 1 + ω k m. S.56 Alternatively, we may use the fact that the three four-vectors f µ k, fixed k, 1, 0, +1 are orthogonal to each other and also to the k µ ω k, k. Furthermore, each fk, 1. Consequently, the symmetric matrix in Lorentz indices µ, ν on the left hand side of eq. 7.0 has to be minus the projection matrix onto four-vectors orthogonal to the k µ, and that is precisely the matrix appearing on the right hand side of eq. 7.0 note k m. Problem 3b: The operator product µ xâν y comprises ââ, â â, â â and ââ terms. The first three kinds of terms have zero matrix elements between vacuum states while 0 â k, â k, 0 ω k π 3 δ 3 k k δ,. Consequently, 0 µ xâν y 0 d 3 k 1 [ ] π 3 e ikx y f µ k, f ν k, ω k k 0 +ω k d 3 k π 3 1 ω k g µν 1 m g µν 1 m [ g µν + kµ k ν ] e ikx y x µ x ν x µ x ν m k 0 +ω k d 3 k π 3 1 ω k [e ikx y] k 0 +ω k Dx y S.57 in accordance with eq. 7.1. 1
Problem 3c: Consider a free scalar field ˆΦ of the same mass m as the vector field. In class we saw that 0 ˆΦxˆΦy 0 Dx y S.58 so we may interpret eq. 7.1 as 0 µ xâν y 0 g µν 1 m x µ x ν 0 ˆΦxˆΦy 0. S.59. In class we have also learned that the scalar Feynman propagator G scalar F x y 0 TˆΦxˆΦy 0 { Dx y for x 0 > y 0, Dy x for y 0 > x 0, S.60 satisfies but x 0 Gscalar F x y 0 T 0 ˆΦx ˆΦy 0 S.61 x 0 Gscalar F x y 0 T 0 ˆΦx ˆΦy 0 iδ 4 x y. S.6 Since the space derivatives µ for µ 0 commute with the time-ordering, it follows that g µν 1 m x µ x ν G scalar F x y 0 T g µν µ ν ˆΦx ˆΦy 0 m + i m δµ0 δ ν0 δ 4 x y. S.63 Now, for any differential operator D acting on ˆΦx we have 0 D ˆΦx ˆΦy 0 D x 0 ˆΦx ˆΦy 0 D x Dx y, S.64 13
and consequently 0 T D ˆΦx ˆΦy 0 { 0 D ˆΦx ˆΦy 0 for x 0 > y 0, 0 ˆΦy D ˆΦx 0 for y 0 > x 0, { Dx Dx y for x 0 > y 0, D x Dy x for y 0 > x 0. S.65 In particular, for D g µν µ ν m S.66 we have 0 T g µν µ ν ˆΦx ˆΦy 0 m g µν µ ν m Dx y for x 0 > y 0, g µν µ ν m Dy x for y 0 > x 0, in light of eq. S.59 { 0  µ x Âν y 0 for x 0 > y 0, 0 Âν y µ x 0 for y 0 > x 0, 0 T µ x Âν y 0 for the un-modified time ordering T on the last line. S.67 Finally, let s plug eq. S.67 into the RHS of eq. S.63. Thus way, we obtain g µν 1 m x µ x ν G scalar F x y 0 T µ x Âν y 0 + i m δµ0 δ ν0 δ 4 x y 0 T  µ x Âν y 0 def G µν x y S.68 F for the modified time-ordering the Feynman propagator for the vector field. This proves the first line of eq. 7.. 14
To prove the second line, we use the momentum-space form of the scalar propagator, G scalar F x y d 4 k π 4 ie ikx y k m + i0. S.69 Consequently, G µν F x y g µν 1 m G scalar F x y x µ x ν g µν 1 d 4 k ie ikx y m x µ x ν π 4 k m + i0 d 4 k g µν π 4 + kµ k ν m ie ikx y k m + i0. S.70 Q.E.D. Problem 3d: The free massive vector field has classical Lagrangian L 1 4 F νµf νµ + 1m A µ A µ 1 νa µ ν A µ µ A ν + 1 m A µ A µ S.71 1 A µ A µ + m A µ µ ν A ν + a total derivative, so the action may be written as S d 4 x L 1 d 4 x A µ x D µν A ν x S.7 where D µν + m g µν µ ν S.73 is a second-order differential operator. Acting with this operator on the Feynman propaga- 15
tor 7., we have D µν G F ν x y + m g µν µ ν g ν 1 m ν G scalar F x y δ µ + m + µ + m m µ + µ m δ µ + m + 0 µ G scalar F x y δ µ + m G scalar F x y iδ 4 x y +iδ µ δ4 x y G scalar F x y S.74 in accordance with eq. 7.5. This means that the Feynman propagator of the massive vector fields is indeed a Green s function of the differential operator S.73. 16