Difference between revisions of "Limit of Energy in Lab Frame"
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+ | <center><math> \underline{\textbf{Navigation} }</math> | ||
+ | |||
+ | [[Uniform_distribution_in_Energy_and_Theta_LUND_files|<math>\vartriangleleft </math>]] | ||
+ | [[VanWasshenova_Thesis#Moller_Scattering|<math>\triangle </math>]] | ||
+ | [[Limit_of_Scattering_Angle_Theta_in_Lab_Frame|<math>\vartriangleright </math>]] | ||
+ | |||
+ | </center> | ||
+ | |||
The t quantity is known as the square of the 4-momentum transfer | The t quantity is known as the square of the 4-momentum transfer | ||
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− | <center><math>t=2m^2-2E_1^{*2}+2 \left | p_1^{*2}\right | \cos \theta_{1\ 1'}=2m^2-2E_2^{*2}+2 \left | p_2^{*2}\right | \cos \theta_{2\ 2'}</math></center> | + | <center><math>t=2m^2-2E_1^{*2}+2 \left | p_1^{*2}\right | \cos \theta_{1^*\ 1^{'*}}=2m^2-2E_2^{*2}+2 \left | p_2^{*2}\right | \cos \theta_{2^*\ 2^{'*}}</math></center> |
− | where <math>\theta_{1\ 1'}</math> and <math>\theta_{2\ 2'}</math>is the angle between the before and after momentum in the CM frame | + | where <math>\theta_{1^*\ 1^{'*}}</math> and <math>\theta_{2^*\ 2^{'*}}</math>is the angle between the before and after momentum in the CM frame |
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− | <center><math>t=-2p_1^{*2}+2 \left | p_1^{*2}\right | \cos \theta_{1\ 1'}=-2p_2^{*2}+2 \left | p_2^{*2}\right | \cos \theta_{2\ 2'}</math></center> | + | <center><math>t=-2p_1^{*2}+2 \left | p_1^{*2}\right | \cos \theta_{1^*\ 1^{'*}}=-2p_2^{*2}+2 \left | p_2^{*2}\right | \cos \theta_{2^*\ 2^{'*}}</math></center> |
+ | |||
+ | |||
+ | |||
+ | <center><math>t=-2p_1^{*2}(1- \cos \theta_{1^*\ 1^{'*}})=-2p_2^{*2}(1-\cos \theta_{2^*\ 2^{'*}})</math></center> | ||
− | + | ==<math>\theta \approx 0^{\circ}</math>== | |
+ | There is no scattering, or no momentum transfer at 0 degrees since the incident momentum direction is the same as the scattered momentum direction. However, at a certain angle enough momentum must be transferred to provide the ionization energy to create a Moller electron. | ||
− | The maximum momentum is transfered at 90 degrees, i.e. <math>\cos 90^{circ}=0</math> | + | ==<math>\theta=90^{\circ}</math>== |
+ | The maximum momentum is transfered at 90 degrees, i.e. <math>\cos 90^{\circ}=0</math> | ||
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− | <center><math>t= | + | <center><math>t=2(m^{2}-E_1^{*2})=2(m^{2}-E_2^{*2})</math></center> |
+ | |||
+ | ==<math>\theta=180^{\circ}</math>== | ||
+ | The maximum momentum is transfered at 180 degrees, i.e. <math>\cos 180^{\circ}=-1</math> | ||
+ | |||
+ | |||
+ | <center><math>t=-2p_1^{*2}(1- \cos \theta_{1^*\ 1^{'*}})=-2p_2^{*2}(1-\cos \theta_{2^*\ 2^{'*}})</math></center> | ||
+ | <center><math>t=-4p_1^{*2}</math></center> | ||
+ | |||
+ | |||
+ | This can be rewritten again using the relativistic energy relation <math>E^2=m^2+p^2</math> | ||
+ | |||
+ | |||
+ | <center><math>t=4(m^{2}-E_1^{*2})=4(m^{2}-E_2^{*2})</math></center> | ||
=In the Lab Frame= | =In the Lab Frame= | ||
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<center><math>t=2m^2-2mE_2^{'}=2(m^2-E_2^{'}m)</math></center> | <center><math>t=2m^2-2mE_2^{'}=2(m^2-E_2^{'}m)</math></center> | ||
− | = | + | =Maximum Moller Energy in Lab Frame= |
+ | |||
+ | Since t is invariant between frames | ||
+ | |||
<center><math>t=2(m^2-E_2^{'}m)=2(m^2-E_2^{*2})</math></center> | <center><math>t=2(m^2-E_2^{'}m)=2(m^2-E_2^{*2})</math></center> | ||
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− | with<math> E_2^{*} \ | + | with<math> E_2^{*} \approx 53\ MeV</math> for <math>E_1=11000\ MeV</math> |
The Moller electron has a maximum energy possible of: | The Moller electron has a maximum energy possible of: | ||
<center><math>E_2^{'}=5500\ MeV</math></center> | <center><math>E_2^{'}=5500\ MeV</math></center> | ||
+ | |||
+ | =Minimum Moller Energy in Lab Frame= | ||
+ | |||
+ | Since t is invariant between frames | ||
+ | |||
+ | |||
+ | <center><math>t=2(m^2-E_2^{'}m)=0</math></center> | ||
+ | |||
+ | |||
+ | <center><math>m^2=E_2^{'}m</math></center> | ||
+ | |||
+ | |||
+ | <center><math>m\gt E_2^{'}</math></center> | ||
+ | |||
+ | This implies that the Moller electron has a non-zero momentum, hence it's total energy is more than it's rest mass energy. The momentum that the Moller electron would have would have to be transfered from the incident electron to the "stationary" electron bound to the detector. The binding energy of an electron bound to a hydrogen atom is 13.6 eV | ||
+ | |||
+ | |||
+ | <center><math>t=-2p_1^{*2}(1- \cos \theta_{1^*\ 1^{'*}})=-2p_2^{*2}(1-\cos \theta_{2^*\ 2^{'*}})=2(m^2-E_2^{'}m)</math></center> | ||
+ | |||
+ | |||
+ | |||
+ | <center><math>-2p_2^{*2}(1-\cos \theta_{2^*\ 2^{'*}})=2(m^2-E_2^{'}m)</math></center> | ||
+ | |||
+ | |||
+ | <center><math>(m^2-E_2^{*2})(1-\cos \theta_{2^*\ 2^{'*}})=-m(E_2^{'}-m)</math></center> | ||
+ | |||
+ | |||
+ | <center><math>((.511\ MeV)^2-(53\ MeV)^{*2})(1-\cos \theta_{2^*\ 2^{'*}})=-(.511\ MeV)(E_2^{'}-(.511\ MeV))</math></center> | ||
+ | |||
+ | |||
+ | <center><math>5496553579.26\ eV(1-\cos \theta_{2^*\ 2^{'*}})=(E_2^{'}-(.511\ MeV))</math></center> | ||
+ | |||
+ | |||
+ | |||
+ | At <math>\theta_{2^*\ 2^{'*}}=0^{\circ}</math> | ||
+ | |||
+ | |||
+ | <center><math>5496553579.26\ eV+(.511\ MeV)=E_2^{'}</math></center> | ||
+ | |||
+ | |||
+ | <center><math>.511\ MeV=E_2^{'}</math></center> | ||
+ | |||
+ | |||
---- | ---- | ||
− | <center><math>\ | + | <center><math> \underline{\textbf{Navigation} }</math> |
− | [[ | + | [[Uniform_distribution_in_Energy_and_Theta_LUND_files|<math>\vartriangleleft </math>]] |
[[VanWasshenova_Thesis#Moller_Scattering|<math>\triangle </math>]] | [[VanWasshenova_Thesis#Moller_Scattering|<math>\triangle </math>]] | ||
− | [[ | + | [[Limit_of_Scattering_Angle_Theta_in_Lab_Frame|<math>\vartriangleright </math>]] |
</center> | </center> |
Latest revision as of 19:08, 1 January 2019
The t quantity is known as the square of the 4-momentum transfer
In the CM Frame
where and is the angle between the before and after momentum in the CM frame
Using the relativistic relation this reduces to
There is no scattering, or no momentum transfer at 0 degrees since the incident momentum direction is the same as the scattered momentum direction. However, at a certain angle enough momentum must be transferred to provide the ionization energy to create a Moller electron.
The maximum momentum is transfered at 90 degrees, i.e.
This can be rewritten again using the relativistic energy relation
The maximum momentum is transfered at 180 degrees, i.e.
This can be rewritten again using the relativistic energy relation
In the Lab Frame
with
and
Maximum Moller Energy in Lab Frame
Since t is invariant between frames
with for
The Moller electron has a maximum energy possible of:
Minimum Moller Energy in Lab Frame
Since t is invariant between frames
This implies that the Moller electron has a non-zero momentum, hence it's total energy is more than it's rest mass energy. The momentum that the Moller electron would have would have to be transfered from the incident electron to the "stationary" electron bound to the detector. The binding energy of an electron bound to a hydrogen atom is 13.6 eV
At