V. Electroweak Precision Observables

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V. Electroweak Precision Observables What radiative corrections can teach us Basic formalism

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V. Electroweak Precision Observables. What radiative corrections can teach us Basic formalism. g. g. Weak Decays: G F encodes information on the spectrum via radiative corrections. Muon Decay. D r m depends on parameters of particles inside loops. g. g. - PowerPoint PPT Presentation

Transcript of V. Electroweak Precision Observables

Page 1: V.  Electroweak Precision Observables

V. Electroweak Precision Observables

• What radiative corrections can teach us

• Basic formalism

Page 2: V.  Electroweak Precision Observables

Weak Decays: GF encodes information on the spectrum via radiative corrections

+L

μ−€

ν μ

ν e€

e−

W −

μ−€

ν μ

ν μ

ν e€

e−

e−

W −

Z 0

+

+

μ−€

ν μ

ν e€

e−

W −

W −

gg

Muon Decay

GFμ

2=

g2

8MW21+ Δrμ( )

1

τ μ

=GF2mμ

5

192π 3+L rμ depends on parameters

of particles inside loops

Page 3: V.  Electroweak Precision Observables

Comparing radiative corrections in different processes can probe particle spectrum

+L

ν μ

e−

Z 0

+

+

Z 0

gg

ν μ

Z 0

e−

Z 0

Z 0

ν μ

e−

e−

e−

e−

e−

ν μ

ν μ

ν μ

ν μ

GFZ

2=

g2

8MW21+ ΔrZ( )

rμ differs from rZ

Page 4: V.  Electroweak Precision Observables

Comparing radiative corrections in different processes can probe particle spectrum

t

t

Z 0

Z 0

t

b

W +

W +

GFZ

GFμ≈ 1+ ΔrZ −Δrμ( )

rZ ~α

πln

mt2

MW2

rμ ~α

π

mt2

MW2

Page 5: V.  Electroweak Precision Observables

Charged Current Interactions I

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G.B. Propagator

Fermion Propagator

Vertex Correction

Box (finite)

Page 6: V.  Electroweak Precision Observables

Charged Current Interactions II

Muon decay at one loop:

Muon lifetime:

Fermi constant & rμ : Tree level

Vertex, box, fermion prop

Page 7: V.  Electroweak Precision Observables

Neutral Current Interactions I

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G.B. Propagator

Fermion Propagator

Vertex Correction

Box (finite)

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Complication: Z mixing

Page 8: V.  Electroweak Precision Observables

Neutral Current Interactions II

Neutral current l+f --> l+f at one loop:

Normalization:

Vector & axial vector couplings:

Normalize to Gμ: Remove rμ

Weak mixing:

Vertex & ext leg

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Page 9: V.  Electroweak Precision Observables

Oblique Parameters I

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The parameter:

Weak mixing:

Can impose constraints from global fits to EWPO via S,T,U-dependence of these quantities

Page 10: V.  Electroweak Precision Observables

Oblique Parameters II

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Fit to electroweak precision observables:

Plus low-energy observables: atomic PV, PV electron scattering, ν scattering…

mH = 114.4 GeV