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PHYSICAL CONSEQUENCE:

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forbidden. NS. The double-to-single ionization ratio is equal for 800 nm & 400 nm excitation. ... science with x-fel. Five experiments slated for first operations ... – PowerPoint PPT presentation

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Title: PHYSICAL CONSEQUENCE:


1
semi-classical rescattering
  • PHYSICAL CONSEQUENCE
  • electron capture results in odd harmonic
    photons.
  • harmonic cutoff (3Up IP) rule !!
  • elastic scattering yields energetic (10Up)
    electrons.
  • inelastic e-2e scattering ? multiple electron
    ejection.

2
  • tunnel (vo0)v(t) Eo/?cos?t - cos?o
  • backscatter (? ?)set v(?r) -v(?r)
  • v(t gt tr) Eo/?(cos?t - cos?r) (cos?r -
    cos?o)

3
Semi-classical solution of generalized
SFA Lewenstein et al., PRA 51, 1495 (1995)
  • backscattering results in production of high
    energy electrons

4
helium, 0.8 ?m, 0.8 PW/cm2
5
helium, 0.8 ?m
6
Up ? ip2
7
  • some insights into double ionization
  • NS linked to depletion of the neutral ground
    state.
  • first electron tunnels into the continuum.
  • the NS yield is strongly polarization dependent
    as compared to the sequential processes.

8
  • Experiment performed at two intensities.
  • 0.8 PW/cm2 1/500
  • 0.4 PW/cm2 1/1000
  • 3He is used for coincidence measurement.

9
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10
  • mechanical referencing design
  • common interaction volume
  • pulsed mode operation
  • dual MCP detection
  • UHV environment (10-10 t)

11
mass spectrometer
electron spectrometer
12
  • an 81 XeKr gas mix test was used to test the
    coincidence apparatus.

13
205M shots 45M He hits 1058 He2 coin
81014 W/cm2
  • double ionization results in hotter
    distribution than single ionization.
  • distribution consistent with e-2e rescattering.

14
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15
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16
helium, 0.4 ?m
  • reduce ponderomotive energy by 4 since Up ? ?2
  • The double-to-single ionization ratio is equal
    for 800 nm 400 nm excitation.

17
is the Keldysh picture relevant for multiple
ionization?
18
ratio double-to-single ionization
  • non-sequential ionization exists for all inert
    gases in the near-ir.

19
? ?
Chaloupka et al. PRL 90, 33002-1 (2003).
20
  • rescattering model captures the essential
    physics
  • single electron approximation
  • quasi-static limit
  • tunneling regime
  • experimental test of the model has been limited
  • starting to understand many-body effects
  • little or no experiments
  • relativistic regime
  • long wavelength regime
  • strong-field short wavelength limit

21
scaling laws suggest that wavelength is important
parameter for altering the intense laser-atom
interaction.
  • SF wavelength scaling parameters
  • Keldysh adiabaticity parameter ?????-1
  • ponderomotive energy Up???2
  • wave packet spread ???
  • the scaling of the physics is virtually untested.
  • may provide a new paradigm in the physics.

22
inert gas
23
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24
  • you can really see these harmonics!

25
low frequency limit ??? 1
  • Large ponderomotive energy
  • Up ? ? ?2
  • Access tunnel ionization in more atoms
  • ??????atom
  • Paradigm for laser-atom interaction
  • test scaling laws
  • accessible to control schemes
  • simplify metrology

26
  • ponderomotive or quiver energy Up ?2 ? /4
  • displacement ? ? 2 E

27
high frequency limit ?????atom ??gtgt 1 SF limit
?o ? 1 au
28
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29
  • fel oscillators are well established facilities.
  • operate from the far-IR visible.
  • high average power performance.
  • limited by optics.

30
1.5-15 A, 1012/pulse, 200 fs, 120
Hz commissioning 2007-08
31
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32
Five experiments slated for first operationssee
2000 BESAC report LCLS The first
experimentsat www.er.doe.gov/production/bes/BESA
C/pubs.html.
target studies atomic physics femotchemistry nano
scale dynamics in condensed phase plasma warm
dense matter structural studies on single
biomolecules
Real answer No one knows?
33
xenon at 770 nm and 790 nm
Rudati et al. PRL 92, 203001-1 (2004).
34
Isolated Core Excitation Gallagher Cooke (1978)
35
Rydberg
  • transient Rydberg population is shelved, while
    the core electron is excited.
  • the differential shift between Rydberg doubly
    excited states is near zero.
  • unlike ICE, the Rydberg electron is not a simple
    spectator in FIRE.
  • scheme of Charalambidis et al. holds at low
    intensity, Up ?? ?E PRA 50, R2822 (1994).
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