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Electroweak Physics Mark Pitt Virginia Tech weak physics is a broad subject. I will limit these lectures nergies/momentum transfers Q 2 < 1 (GeV/c) 2 ic scattering only (mostly e + N reactions but some + N and ectures will cover the majority of the electroweak physics n at electron accelerators in the nuclear physics category. 16 th Summer School in Nuclear Physics

Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

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Page 1: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Electroweak Physics

Mark Pitt Virginia Tech

Electroweak physics is a broad subject. I will limit these lectures to:

• Low energies/momentum transfers Q2 < 1 (GeV/c) 2

• Elastic scattering only (mostly e + N reactions but some + N and e + e)

These lectures will cover the majority of the electroweak physicsgoing on at electron accelerators in the nuclear physics category.

16th Summer School in Nuclear Physics

Page 2: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Lecture 1

Page 3: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

N e

Z

N e

What are we going to cover?

e + N e + N N = nucleonElectromagnetic Form Factors(GE

p , GMp , GE

n , GMn )

• GEp , GM

p ratio• 2 photon physics

• improved knowledge of GEn

e + N e + N N = nucleonParity-violating electron scatteringNeutral Weak Form Factors(GE

Z,p , GMZ,p , GE

Z,n , GMZ,n , GA

e)

• Strange vector form factors• Nucleon's anapole moment

We will also cover the experimental techniques unique to the parity-violating electron scattering types of experiments.

Low energy Standard Model Tests• Weak charge of the electron• Weak charge of the proton• Weak charge of the neutron

Page 4: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

http://lpsc.in2p3.fr/congres/pavi2004/

http://www.krl.caltech.edu/~subZ/meet/index.html

Some Useful Resource Material on this TopicGood recent review articles:

K.S. Kumar and P.A. Souder, Prog. Part. Nucl. Phys. 45, S333 (2000)D.H. Beck and B.R. Holstein, Int. J. Mod. Phys. E10, 1 (2001)D.H. Beck and R.D. McKeown, Ann. Rev. Nucl. Part. Sci. 51, 189 (2001)

And two very recent topical workshops (talks posted online at both sites)

Page 5: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Outline of Lectures

1. Develop the formalism of parity-violating electron scattering with stops for:

• electromagnetic form factors• QCD and nucleon "strangeness"

2. Experimental aspects unique to all parity-violating electron scattering experiments

3. Review of experiments devoted to strange form factor measurements (including new results just reported last week)

4. Motivation for low energy Standard Model tests

5. Review of experiments devoted to low energy Standard Model tests

Page 6: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Kinematics of Elastic Electron-Nucleon Scattering

invariant Lorentz sin'4

transfermomentum-4 squared - -

nucleon recoiling to transfer momentum-3 '

nucleon recoiling nsfer toenergy tra E'-E

22

2222

eEEQ

Qqq

ppq

N e qv

,E , p

E' , 'p

Page 7: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Recall the Dirac Equation and Currents

0)( mi

0

0

10

01, 00

space 3,2,1 time,0

ej

0 j

Dirac equation for free electron:

0

where:

with:

leads to electron four-vector current density:

where the adjoint is:

satisfies the continuity equation:

Page 8: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Bilinear Covariants and Their Symmetry Properties

11111Tensor

111Vector Axial

111Vector

111arPseudoscal

111Scalar

CTP

5

5

We describe physical processes through interacting currents need to construct most general form of currents consistent with Lorentz invariance

)44( form theof Terms

32105 where i

P: parity operator (spatial inversion)T: time reversalC: charge conjugation

Note: P (V*V) = +1 P (A*A) = + 1 P (A*V) = -1

Page 9: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Relation Between Cross Sections and Matrix Elements

For a process A + B C + D

the differential cross section is

2

264

1M

p

p

sd

d

i

fcm

The physics is all in the matrix elementM

Page 10: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Electromagnetic and Weak Interactions : Historical View

eeppeEMpEM

Q

eJ

Q

eJM

2

2, ,

2

2,

n e

pe-

eweakJ ,

NweakJ ,

p e

eEMJ ,

pEMJ ,

eeFnp

eweakF

Nweak GJGJM

, ,,

EM: e + p e + p elastic scattering

Weak: n e- + p + e neutron beta decay

Fermi (1932) : contact interaction, form inspired by EM

V x V

V x V

Parity Violation (1956, Lee, Yang; 1957, Wu): required modification toform of current - need axial vector as well as vector to get a parity-violatinginteraction

eeFnp

eweakF

Nweak GJGJM

55, ,, 11

(V - A) x (V - A)

Note: weak interaction process here is charged current (CC)

Page 11: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

But Zel'Dovich Suggests - What About Neutral Weak Currents ?

Page 12: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

The Neutral Current, Zel'Dovich continued

Page 13: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Standard Model of Electroweak Interactions (1967)Weinberg-Salam Model (1967): electroweak - unified EM and weak SU(2) x U(1) gauge theory with spontaneous symmetry breaking fermions:Leptons: e-, e

-, - , + anti-particles

Quarks: u , d s , c b , t + anti-particles

gauge bosons:EM: (m = 0)weak: W+,- (mW = 80 GeV/c2) Z0 (mZ = 91 GeV/c2)

f ' f

Z0

f ' f

W+,-

f ' f electromagnetic interaction:charged fermions participate

charged current weak interaction:all fermions participate

neutral current weak :all fermions participate

Neutral weak currents first observed at CERN in 1973in reactions like

ee

Page 14: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Feynman Rules for Calculating M in the Standard ModelThe fundamental parameter of the Standard Model is the weak mixing

angle - W

Feynman rules:

couplings weak and neticelectromag theare and wheresin geg

eW

W+,-

e

2

1

Q22

1

WMQ

5

22

g

Z022

1

ZMQ

5

cos2

f

Af

VW

ccg

- only couples to electromagnetic vector currentW, Z - couple to both weak vector and axial-vector currents

constant coupling Fermi theis8

2 :Note

~For

2

2

2,

2

2222

2,

2

2

2

2

WF

ZWEM

weakZ

ZWweakEM

M

gG

Me

Qg

M

MMQ

MQ

gM

Q

eM

Page 15: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Electromagnetic e- p Elastic Scattering

2121 FFGFFG ME

NN

N uM

qiQFQFuNJN

2)()(|| 2

22

1

2

2

4 NM

Q

eepEMeEMpEM

Q

eJJ

Q

eJM

2

2,, ,

2

2,

From the Feynman rules, the matrix element is:

But the proton (unlike the electron) is not a point-like Dirac particle(need to introduce form factors to characterize its structure):

Dira

c

Pauli

e

MME G

GG

d

dM

d

d 2222

Mott

2 tan2

Another way to write the form factors is the Sachs definition:

The cross section for e-p elastic scattering is then given as:(Rosenbluth formula)

N e

Page 16: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

N

n

91.10)(

n

MG

eqG p

E

0)(

N

p

79.20)(

p

MG

Proton and Neutron EM Form Factors: Measurements

All follow (appear) to follow dipole form:

GpE (Q

2)

GpM (Q

2)

GnM (Q

2)

22 GeV 2 0~ Q

In Breit frame

Fourier transform yields spatial distribution

(R) = o exp(-R/Ro) where R o ~ 0.25 fm

E spatial charge distributionM spatial magnetization distribution

2

2

2

2

)GeV/(71.01

1

cQ

QGD

Page 17: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

NM

qiFFJ

221

Nucleon Spacelike (q2 < 0) Electromagnetic Form Factors

• 1960’s – early 1990’s : GpE , G

pM, Gn

E , Gn

M measured using Rosenbluth separation in e + p (elastic) and e + d (quasielastic):

• early 1990’s – present: Polarization observables and ratio techniques used

Sachs:

Dira

c

Pauli

e

MME G

GG

d

d

d

d 2222

Mott

tan2

2121 FFGFFG ME

||

2||

)/(

22 ......)......(

''''

A

MNe

A

MENe

dd

ME GPPGGPPGGd

dNeNeNeNe

unpol

2

2

4 NM

Q

Page 18: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Nucleon Spacelike EM Form Factors, World Data - 1993

Knowledge of nucleon spacelike EM form factors in 1993:

GpE , G

pM, Gn

M follow dipole form GD = (1 + Q2/0.71)-2 at ~20% level

GnE ~ 0 (from quasielastic e-d data)

GpM/pGD Gn

M/nGD

GpE/GD

Relative error~ 2%

~ 10-20%

~ 5-10%

(GnE)2/G2

D

~ 50-100%

Page 19: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Proton Electromagnetic Form Factor Ratio: GpE / G

pM

Older data: Rosenbluth separation

JLab 2000: M. K. Jones, et al.

JLab 2002: O. Gayou, et al.

using measurements of recoilproton polarization in Hall A with

e + p e + p

GEp

GMp

Pt

Pl

Ee Ee'

2Mtan

e

2

Difference in the spatial distribution of charge and magnetization currents in the proton

Page 20: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Proton EM Form Factor Ratio Fp2 / F

p1 : pQCD predictions

pQCD prediction: As Q2

Fp1 1/Q4 Fp

2 1/Q6

Q2 Fp2 /F

p1 constant

not being reached yet

Ralston, et al. suggested different scaling behavior:

Fp2 /F

p1 1/Q

when quark orbital angular momentum included

Page 21: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Comparison of Polarization Transfer and Rosenbluth Techniques

Recent work on Rosenbluth:

• reanalyis of old SLAC data (Arrington)• reanalysis of old JLAB data (Christy)• new "Super-Rosenbluth" measurement in Hall A (Segel, Arrington)

Conclusion:• No problem with Rosenbluth• No problem with polarization transfer

What about radiative corrections?Have 2-photon graphs been underestimatedin the past?

M. Vanderhaeghen and others say YES.

Using the GEp and GM

p from polarizationtransfer and improved calculation oftwo photon graphs, they can reproducethe Rosenbluth results.

Still an active area, more later if time...

Page 22: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Neutron Electric Form Factor

GnE (Q

2)

Neutron Electric Charge Distribution

Data from:beam-target asymmetries

recoil polarizationin:

d (e, e’ n)

d (e, e’ n)

3He (e, e’ n)

at:

Mainz MAMIJefferson Lab

NIKHEFMIT-Bates

Page 23: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

ND3 DNP Polarized Target Apparatus of JLAB E93-026

MicrowaveInput

NMRSignal Out

Refrigerator

LiquidHelium

Magnet

Target(inside coil)

1° K

NMR Coil

To Pumps

7656A14-94

LN2LN2

To Pumps

B5T

e–Beam

Frequency

LiquidHelium

Page 24: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Neutron’s Magnetic Form Factor GnM : Current Status

The most precise recent datacomes from ratio measurements:

(d(e,e’n))(d(e,e’p))

at NIKHEF/Mainz (Anklin, Kubon, et al.)and ELSA at Bonn (Bruins, et al.)

Large (8-10%) systematic discrepancy between the two data sets : likely due to error in neutron detection efficiency

Newest data: JLAB 95-001 (Xu, et al. 2000) 3He(e, e’) in Hall Aagrees with NIKHEF/Mainz data at Q2 = 0.1, 0.2 GeV2

more data exists (Q2 = 0.3 - 0.6 GeV2) but requires improved nuclear corrections (relativistic effects need to be included)

(JLAB 95-001)

Page 25: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

How can we get the nucleon form factors theoretically?

u

ud

u

us

s

valence quarks

“non-strange” sea (u, u, d, d) quarks

“strange” sea (s, s) quarks

proton

gluon

Quantum chromodynamics (QCD): believed to be the correct theory of strong interactions

• quarks (3 colors for each) inteacting via exchange of • gluons (8 types)

Until recently only stable objects were mesons (2 quark) and baryons (3 quark)

So we know the constituents of the proton, we have a quantum fieldtheory for their interaction why can't we solve for its structure?

Page 26: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Calculation of Electron’s Magnetic Moment in QED

Quantum Electrodynamics (QED): theory of interacting electrons and photons

perturbation expansion in ~ 1/137

((g-2)/2)theory = (115965230 10) x 10-11

((g-2)/2)experiment = (115965219 1) x 10-11

agreement at 1 part in 108 level

Page 27: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Non-perturbative QCD

Quantum Chromodynamics (QCD): theory of interacting quarks and gluons

For quarks inside the nucleon,typical momenta q ~ 0.3 GeV/c

s ~ 1 cannot solve perturbatively

(unlike QED where ~ 1/137)

Eventually, lattice QCD should providethe solution; In meantime we can measured well-defined nucleon properties that will serve as benchmarks for lattice QCD

s

QCD(running of s)

like the sea of strange quarks, for example!

Page 28: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Do Strange Quarks Contribute to Nucleon Properties?

Deep inelastic scattering, contributions of constituents (partons) to total momentum of proton:

valence quarks: uV 21% dV 9%

sea quarks: (u+u) : 7% (d+d): 8% (s+s): 5% (c+c): 3% (b+b): 1%

gluons: 46%

gq JLsdu 2

1

2

1

03.01.010.030.0

ssdu

Proton spin:measured in polarized deep inelastic scattering

“Proton spin crisis”

+ s c + X +

+ +

Page 29: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

What role do strange quarks play in nucleon properties?u

ud

u

us

s

valence quarks

“non-strange” sea (u, u, d, d) quarks

“strange” sea (s, s) quarks

Momentum:

Spin:

Mass:

Charge and current:

Main goal of these experiments : To determine the contributions of the strange quark sea (s s) to the electromagnetic properties of the nucleon ("strange form factors").

(DIS) %4 ~ )(1

0

dxssx

proton

gluon

DIS) (polarized %10 ~ | | NssN

term)-( %30 ~ || NNssN

?? | | sM

sE GGNssN

Page 30: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Deep exclusive scattering (DES):Generalized parton dist. (GPD):

fully-correlated quark distribution in coordinate and momentum space

The complete nucleon landscape - unified description

Elastic scattering:

transverse quark distributionin coordinate space

sME

dME

u

ME

GGG

GG

ME ,,

known yet not is factors form theseof

iondecompositflavor quark BUT

n p,for

measured- wellfactors

form magnetic and Electric

,

Deep inelastic scattering (DIS):

longitudinal quark distributionin momentum space

39% ~

4% ~

20% ~

37% ~

:)GeV 2 (Q

fractions momentum

nucleon Measured

22

glue

ss

dd

uu

Page 31: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

The question to be answered by this research:

How does the sea of strange quarks (ss pairs)

inside the proton (or neutron) contribute to its electromagnetic

properties:Gp

E , GpM, Gn

E , GnM ?

Let's measure the strange form factorsGs

E , GsM

directly and find out.

Page 32: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

JLAB “contracted” to understand nuclei

Page 33: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

• Measured precision of EM form factors in 0.1 - 1 GeV2 Q2 range ~ 2 - 4%• Projected precision of NW form factors in 0.1 - 1 GeV2 Q2 range ~ 10% from the current generation of experiments (for magnetic)

Z

N e

ZM

ZE

Z GGNJN , ||

neutral weak form factors

...|||| |:is vefunctionnucleon wa thewhere

uuudusuudsuudguudN

Nucleon form factors measured in elastic e-N scatteringNucleon form factors

• well defined experimental observables• provide an important benchmark for testing non-perturbative QCD structure of the nucleon

N e

ME GGNJN , ||

electromagnetic form factors

Page 34: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

eh

)scattering (elastic Ne

LR

LRA

2

e e pp

652

F 1010factorsform4

G-

Q

How to Measure the Neutral weak form factors

Page 35: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Derive the Parity-Violating Asymmetry (hand-waving)

2*22)Re(2

: toalproportionsection Cross

NCNCEMEM

NCEM

MMMMM

MMM

NNCNNCNNCNEMNEM

eNCeA

eNCeVeeeeW

eNCeEMeeee

eEM

AVJVJ

AgVgJVQQJ,,,,,

,,5

2,,,

sin41

NNCeNCeA

NNCeNCeV

NNCeNCeA

NNCeNCeVNC

NEMeEMeEM

AAgAVgVAgVVgG

M

VVQQ

M

,,,,,,,,

,,2

22~

1~

2,,

,,,,,,,,2

2

*

24

...

)Re(2

NEMeEMe

NNCeNCeV

NEMeEMe

NNCeNCeA

NEMeEMeF

EM

PVNCEM

LR

LR

VVQ

AVgVVQVAgVVQQG

M

MMA

Page 36: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Derive the Parity-Violating Asymmetry (hand-waving), cont.

2,,

,,,,,,,,2

24

NEMeEMe

NNCeNCeV

NEMeEMe

NNCeNCeA

NEMeEMeF

LR

LR

VVQ

AVgVVQVAgVVQQGA

unpol

AMEF

LR

LR AAAQGA

224

2

= Q2/4M2

= [1+2(1+)tan2(/2)]-1

)()()sin41()()()(

)()()(

222

222

22

QGQGAQGQGQA

QGQGA

MeAWA

MZMM

EZEE

Now how do the neutral weak form factors GEZ and GM

Z give usinformation about the strange form factors?

Page 37: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

NN

qqN u

M

qiFFuNqqN

q

2||

:as

currentquark given a with associated factors formnucleon theDefine

21

NN

N uM

qiQFQFuNJN

2)()(||

: throughfactors form Pauli and Diracnucleon thedefined weRecall,

22

21

qqqM

qqqE FFGFFG 2121

: thenare factors form Sachs The

First some notation

Page 38: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

STANDARDMODEL

COUPLINGS

sME

dME

uME

pZME

nME

pME GGGGGG ,,,

,,

,,

,, ,,,,

Invoke proton/neutron charge symmetry 3 equations, 3 unknowns

Neutral weak form factors strange form factors

psMEW

pdMEW

puMEW

pZME

Z

nsME

ndME

nuME

nME

psME

pdME

puME

pME

GGGGpJp

GGGGnJn

GGGGpJp

,,

2,,

2,,

2,,

,,

,,

,,

,,

,,

,,

,,

,,

sin3

41sin

3

41sin

3

81:||

3

1

3

1

3

2:||

3

1

3

1

3

2:||

Flavor decomposition of nucleon

E/M form factors:

ELECTROWEAKCURRENTS

i

iiZi

Z

iiii qqQJqqQJ

q qZ aZ

e 1 1 + 4 sin2W +1

u +2/3 1 8/3 sin2W 1

d 1/3 1 + 4/3 sin2W +1

s 1/3 1 + 4/3 sin2W +1

Page 39: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Validity of charge symmetry breaking assumption

nsME

psME

nuME

pdME

ndME

puME GGGGGG

du,,

,,

,,

,,

,,

,,

Size of charge symmetry breaking effects in some n,p observables:

• n - p mass difference (mn - mp)/mn ~ 0.14%

• polarized elastic scattering n + p, p+n A = An - Ap = (33 ± 6) x 10-4

Vigdor et al, PRC 46, 410 (1992) • Forward backward asymmetry n + p d + 0 Afb ~ (17 ± 10)x 10-4 Opper et al., nucl-ex 0306027 (2003)

For vector form factors theoretical CSB estimates indicate < 1% violations (unobservable with currently anticipated uncertainties)

(Miller PRC 57, 1492 (1998) Lewis and Mobed, PRD 59, 073002(1999)

Page 40: Electroweak Physics Mark Pitt Virginia Tech Electroweak physics is a broad subject. I will limit these lectures to: Low energies/momentum transfers

Parity Violating Electron Scattering - Probe of Neutral Weak Form Factors

polarized electrons, unpolarized target

unpol

AMEF

LR

LR AAAQGA

224

2

2

e e pp

)()()sin41()()()(

)()()(

222

222

22

QGQGAQGQGQA

QGQGA

MeAWA

MZMM

EZEE

eA

sM

sE

GGG

At a given Q2 decomposition of GsE, Gs

M, GeA

Requires 3 measurements for full decomposition:

Forward angle e + p (elastic)Backward angle e + p (elastic)Backward angle e + d (quasi-elastic)

Strange electric and magnetic

form factors,+ axial form factor