Lecture 20: Mar 29th 2012 Reading Griffiths chapter 7 HW due next Thursday: 7.37, 7.39 Calculate the e+e- +- CM frame matrix element. In the ultra-relativistic limit show that it obeys the s,t,u crossing relationship with e-- e-1) Feynman rules for iM a) Draw a diagram labeling all the incoming and outgoing momentum and spins. Use arrows to indicate particles (with direction of time) and antiparticles (opposite direction of time) and internal lines (preserving continuity of the direction of flow). Note down which spins are known and which will be summed over (final or internal state spins) or averaged over (initial state spins if unknown). b) Write down spinors for particles and antiparticles. u for incoming electrons and u for outgoing electrons. u for incoming positrons and for outgoing positrons. e m for incoming photons and e m * for outgoing photons. For instance for an incoming electron, s3 1, we write us1 (p1 ) and for an outgoing electron, 3, u ( p3 ) c) Vertex factors of ige, use a different index for each vertex term. Each vertex represents a separate interaction and has its own index As an example with particles a vertex factor is written between the outgoing (first) and incoming (last) particle to form a current term. s3 b and c form the current terms, example u ( p3 ) us1 (p1 ), which will reduce to factors proportional to momentum just as in our scalar particle transition rate. This is the basic unit for a particle in transition and is called a particle current, i.e. the J we derived. Where there is an initial or final state photon at the vertex the vertex factor will be summed over with the photon if there is one. e m = e/ . d) Propagators for the photons or electrons/positrons: -ig/q2, i(q + m)/(q2 - m2) Note in the photon propagator case the g matrix converts to so it is summed with of the first current. The propegator is what relates the two interactions in this case. In the case of the electron propagator each current has a photon which is summed with the vertex and the propagator has it’s own sum over q, so no further sums have to be done to get a scalar result for the matrix element probability. q is often written as q/ e) Add an integral over the internal four momentum d4q/(2)4 and a four dimensional delta function for each vertex and use one to integrate over the internal four momentum and cancel the other since it corresponds to overall four momentum conservation. f) antisymmetrization. Crossed diagrams will exist for identical sets of particles in the final state. The second diagram will get a negative sign (Fermi statistics). Diagrams can have their electrons moved from the initial to the final state where they occur as a positron producing an equivalent in probability diagram ( a type of crossing symmetry). To have a consistent convention you have to be careful about the signs in those cases. 2) Examples: Electron-electron scattering: Standard diagram and crossed diagram -iM = ò u s3 (p3 )igeg m us1 (p1 ) -igmn q2 u s4 (p4 )igeg n us2 (p2 ) ( 2p ) d 4 ( p1 - p3 - q) ( 2p ) d 4 ( p2 + q - p4 ) 4 4 d 4q ( 2p ) 4 and a crossed diagram terms with a negative sign -ig 4 4 d 4q -iM = - ò u s 4 (p4 )igeg m us1 (p1 ) 2mn u s3 (p3 )igeg n us2 (p2 ) ( 2p ) d 4 ( p1 - p4 - q) ( 2p ) d 4 ( p2 + q - p3 ) 4 q ( 2p ) Use the integration over one delta function to evaluate q. Cancel the other one. Considering the case where we start with un-polarized electrons, we can drop the spin labels and remember that we will have to average over the initial states and sum over the final states in the end. M= -ge2 ( p1 - p3 ) m 2 [ u (3)g u(1)][ u (4)g m u(2)] + ge2 ( p1 - p4 ) 2 [ u(3)g m u(2)][ u (4)g m u(1)] Electron positron scattering: Standard diagram and annihilation diagram. Now that we are used to the form of the matrix element we can skip straight to the second step. M= -ge2 ( p1 - p3 ) éu(3)g m u(1)ùéën (2)g mn (4)ùû + û 2ë ge2 ( p1 + p2 ) 2 én (2)g m u(1)ùéëu(3)g mn (4)ùû ë û Note that in the first term the current electron to positron involves only initial or final state particles respectively. When writing down the terms we always put the adjoint term of the current first so that when multiplied by other term you get a scalar probability. Note the change in sign for the second term. The diagrams can be created from each other by crossing electrons and positrons from the initial to the final state. We will consider diagrams with photons later. 3) Madelstam variables. Define the Madelstam variables. s = ( p1 + p2 ) = p12 + p23 + 2 p1 · p2 = 2m 2 + 2E1E2 - 2 p cosq12 2 2 = 2m 2 + 2(m 2 + p ) + 2 p = 4( p + m 2 ) = 4(p2 + m 2 ) 2 2 2 , t = ( p1 - p3 ) = p12 + p32 - 2 p1 · p3 = 2m 2 - 2E1E3 + 2 p cosq13 2 2 = 2m 2 - 2(m 2 + p ) + 2 p cosq13 = -2 p (1- cosq13 ) = -2 p2 (1- cosq ) 2 2 2 and 2 s = ( p1 + p2 ) = 4( p2 + m 2 ), 2 q t = ( p1 - p3 ) = -2 p2 (1- cosq ) = -4 p2 sin 2 , and 2 q u = ( p1 - p4 ) = -2 p 2 (1+ cosq ) = -4 p2 cos2 , 2 where p is the 3 momentum magnitude for incident particle 1 and theta the angle to the scattered particle 3. Note: it is important to use a consistent notation when defining theta. Note: assumes the masses are the same. Often used when the masses are negligible. 2 Then Electron-electron scattering: Standard diagram and crossed diagram M= 2 -ge2 é m ùéëu(4)g m u(2)ùû + ge éëu(3)g m u(2)ùûéu(4)g m u(1)ù u(3) g u(1) ë û ë û t u Electron positron scattering: Standard diagram and annihilation diagram. -ge2 é ge2 é m m ù ù é ù M= ëu(3)g u(1)ûën (2)g mn (4)û + ën (2)g u(1)ûéëu(3)g mn (4)ùû t s 4) Non relativistic scattering of unpolarized identical particles Before tackling the more “complex” relativistic case where we must evaluate all the matrix and vector multiplications it is instructive to consider a non relativistic case where the matrix math simplifies. æu ö u( p)1 = N ç A ÷, è uB ø N=(|E|+m) æ 1ö uA = ç ÷, è 0ø uB = æ1ö 1 1 æ pz ö ( p × s )ç ÷ = ç ÷, E+m è0ø E + m è px + ipy ø æu ö u( p) 2 = N ç A ÷, è uB ø æ 0ö uA = ç ÷, è 1ø uB = æ0ö 1 1 æ px - ipy ö ( p × s )ç ÷ = ç ÷ E+m è1ø E + m è - pz ø If p<<m then all the p terms in the spinors go to 0 because they are divided by m. Then u s1g m us3 = 2mds1,s3 using u iuj = 2mij,= 1,2 spins and the fact that only the 0 matrix will contribute since the other are anti-block diagonal. Then using the result M= 2 -ge2 é m ùéëu(4)g m u(2)ùû + ge éu(4)g m u(1)ùéëu(3)g m u(2)ùû u(3) g u(1) ë û ë û t u Now consider all the various spin combinations so we can later average over the initial states and sum over the final states. æ1 1 1 1ö æ -1 -1 -1 -1 ö æ1 1 ö M (1, 2 ® 3, 4) M ç , ® , ÷ = M ç , ® , ÷ = -4ge2 me2 ç - ÷ è2 2 2 2ø è2 2 èt uø 2 2ø identical particles in the end state so both the t and u channel diagrams contribute and Note that the summation condition over and u does not allow this interaction to flip the spins. This is expected at first order for slow moving electrons, since they will only interact via the electric field, which we know from the atom does not continually flip spins. However, at higher energy spin flips are possible because the moving electrons are starting to represent a strong current and can interact via the magnetic part of the field. Also for the first set of spins we have true identical particles we must include crossed diagrams in M. In the second two matrix elements we also do not flip the spins since that would create a sum over and u that is 0, but the crossed u channel diagram leaves particle 4 with the spin of particle 1 so that matrix multiplication is not 0. To evaluate the full matrix element for unpolarized we have to average over the number of initial spin states and sum over the final spin states. M = 2 1 2 Mi å (2s1 +1)(2s2 +1) i The probability will be proportional to the matrix element times it’s complex conjugate. Each of the three processes above is independent so we will square each and then add them. Averaging over initial spin states introduces two factors or ½. Summing over the final states each matrix element there are three distinct possibilities that occur twice each. 2 2 éæ 1 1 1ö 1 1 ù 2 M = 2( 4me2 ge2 ) êç - ÷ + 2 + 2 ú 4 u û ëè t u ø t substituting in our expressions for t and u and simplifying M = 8(m g 2 ) 2 2 2 e e é ù ê ú 2 1 1 1 + ê ú 16 p 4 ê sin 4 q cos4 q sin 2 q cos2 q ú ë 2 2 2 2û and putting this in: d/d = (1/8)2 |M|2 pi/pf 1/E2 where in the non relativistic limit E = 2me This type of result will be typical even in the full treatment in that we will end up with a number of s, t and u type scattering or annihilation terms.