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E06007, March 3 -> March 26, 2007 208 Pb(e,e’p) 207 Tl, 209 Bi(e,e’p) 208 Pb Impulse Approximation limitations to the (e,e',p) reaction on 208 Pb, identifying correlations and relativistic effects in the nuclear medium Students: Juan Carlos Cornejo (CSULA) Joaquin Lopez (U. Madrid) x=1, q = 1 GeV/c, w = 0.433 GeV, Q 2 = 0.81 to 1.97 (GeV/c) 2

E06007, March 3 -> March 26, 2007

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E06007, March 3 -> March 26, 2007. 208 Pb(e,e’p) 207 Tl, 209 Bi(e,e’p) 208 Pb. x=1, q = 1 GeV/c, w = 0.433 GeV, Q 2 = 0.81 to 1.97 (GeV/c) 2. Impulse Approximation limitations to the (e,e',p) reaction on 208 Pb, identifying correlations and relativistic effects in the nuclear medium. - PowerPoint PPT Presentation

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Page 1: E06007, March 3 -> March 26, 2007

E06007, March 3 -> March 26, 2007

208Pb(e,e’p)207Tl, 209Bi(e,e’p)208Pb

Impulse Approximation limitations to the (e,e',p) reaction on 208Pb, identifying correlations and relativistic effects in the nuclear medium

Students:

Juan Carlos Cornejo (CSULA)

Joaquin Lopez (U. Madrid)

x=1, q = 1 GeV/c, w = 0.433 GeV, Q2 = 0.81 to 1.97 (GeV/c)2

Page 2: E06007, March 3 -> March 26, 2007

1) Objectives of the Experiment

2) Run time experience

3) Activity to date

4) Anticipated direction for analysis

Page 3: E06007, March 3 -> March 26, 2007

(I) Long Range Correlations search

a) Measure spectroscopic factors for states near the Fermi level. Spectroscopic factors depend on SRC and LRC.

b) Measure cross sections for these low lying states to 500 MeV/c in pmiss. Excess strength here is theoretically identified as due to LRC.

1) Objectives

c) Search for Q2 dependence of spectroscopic factors.

Page 4: E06007, March 3 -> March 26, 2007

(II) Identify dynamical relativistic effects in nuclear structure.

1) Objectives

Measure cross section asymmetry ATL around the three momentum transfer. Relativistic mean field theory predicts an ATL dependence on pmiss< 300 MeV/c due to dynamical enhancement of the lower component of the nucleon wave function. Calculations which do not include the enhancement of the lower component predict a substantially different ATL behavior.

Page 5: E06007, March 3 -> March 26, 2007

2) Run time experience

E=1.343 GeV, optics studies for RHRS, LHRS

E = 2.649 GeV, optics studies for LHRS

Aim to get dY<100 uM, dEbeam/Ebeam < 2.5 e-5

Internal and external sieve slits in/out

delta scans

raster on/off

OPTICS STUDIES

Page 6: E06007, March 3 -> March 26, 2007

Online data base

Page 7: E06007, March 3 -> March 26, 2007

sm

GEANT simulation using nominal spectrometer resolutions plus data with online optics data base.

12C(e,e’p)11B, small acceptance

815 keV

Page 8: E06007, March 3 -> March 26, 2007

12C(e,e’p)11B, full acceptance cut

Emiss

GEANT simulation fitted to spectrometer resolutions plus data with online optics data base.

1 MeV

Page 9: E06007, March 3 -> March 26, 2007

GEANT simulation fitted to spectrometer resolutions plus data with online optics data base.

12C(e,e’p)11B, raster off, full acceptance

Page 10: E06007, March 3 -> March 26, 2007

Progress in data base change

Page 11: E06007, March 3 -> March 26, 2007

Diamond sandwich targets, 4mmx4mm raster

Targets: C/Pb/C, C/Pb/C, C/Bi/C, C(non diamond)

2) Run time experience

Initially accelerator could not provide 100 uA with desired beam characteristics. Ran for 2 days at 55 uA on Pb tgt#4.

Beam current increased to 85 uA and target Pb#4 failed.

Bi target run at 80 uA for about 45 minutes with no sign of failure.

For next two weeks we ran at 45 uA on Pb tgt#3 and Bi with no sign of degradation.

Page 12: E06007, March 3 -> March 26, 2007

Fracture in the diamond foil

Page 13: E06007, March 3 -> March 26, 2007

Pb

C

Pmiss=0 MeV/c

Page 14: E06007, March 3 -> March 26, 2007

GEANT simulation, C with Pb kinematics, pmiss = 0 MeV/c

Pb C11B gs and no 207Tl continuum

dp/p = +- 1.0e-4,

dh = +- 0.3mr,

dv = +- 1.0mr

Page 15: E06007, March 3 -> March 26, 2007

Pb target, pmiss = 200 MeV/c

Page 16: E06007, March 3 -> March 26, 2007

Pb tgt, 200 MeV/c simulation

Page 17: E06007, March 3 -> March 26, 2007

Pb, pmiss = 300 MeV/c

Page 18: E06007, March 3 -> March 26, 2007

Pb, simulation, pmiss = 300 MeV/c

Page 19: E06007, March 3 -> March 26, 2007

Pb, pmiss = -300 MeV/c

Page 20: E06007, March 3 -> March 26, 2007

Simulation, Pb, pmiss = -300MeV/c

Page 21: E06007, March 3 -> March 26, 2007
Page 22: E06007, March 3 -> March 26, 2007

3) Activity to date

Apply simulation to C data.

Analyze optics runs

4) Anticipated direction for analysis

Replay Pb and Bi data as C to get best carbon peaks.

Find values of spectrometer parameters to match carbon peaks.

Use spectrometer parameters to generate geant shapes for the unfolding of the Tl states.

Page 23: E06007, March 3 -> March 26, 2007

Q2 = 1.40 GeV2, pmiss = 0 MeV/c

Page 24: E06007, March 3 -> March 26, 2007

Q2 = 1.97 GeV2, pmiss = 0 MeV/c

Page 25: E06007, March 3 -> March 26, 2007

pmiss=400 MeV/c, charge = 1.72 Coulombs, Pb

Page 26: E06007, March 3 -> March 26, 2007

Simulation, pmiss = 400 MeV/c, charge = 7.2 Coulomb, Pb

Page 27: E06007, March 3 -> March 26, 2007

High pmiss data

Pmiss Coul obtained Coul proposed

400 1.72 7.2

-400 1.15 10.8

500 1.37 8.6

-500 0.89 8.6

Page 28: E06007, March 3 -> March 26, 2007

Emiss with Bi geant superposed

208Pb(e,e’p)207Tl

Using the online data base

3 MeV

Page 29: E06007, March 3 -> March 26, 2007
Page 30: E06007, March 3 -> March 26, 2007
Page 31: E06007, March 3 -> March 26, 2007

0 100 200 MeV/c208Pb(e,e’p)207Tl

Page 32: E06007, March 3 -> March 26, 2007

209Bi(e,e’p)208Pb, pmiss = 200 MeV/c, online optics data base

3 MeV

Page 33: E06007, March 3 -> March 26, 2007

209Bi(e,e’p)208Pb, pmiss = 200 MeV/c, Guido’s recent optics update

2.2 MeV