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LCLS Facility Planning for LCLS-II
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2 LCLS vs. LCLS-II NowHXU - CuSXU - CuHXU - SCSXU - SC Photon Energy Range (eV)250-12800400 - 25000250 - 60001000-5000200-1300 Repetition Rate (Hz)120 100,000 Per Pulse Energy (mJ)~ 4 ~ 8~ 0.2~ 1 Photons/Second~ 10 14 ~ 10 16 ~ 10 17 4 GeV SC Linac In sectors 0-10 NEHFEH 14 GeV LCLS linac still used for x-rays up to 25 keV North side source: 0.2-1.2 keV ( ≥ 100kHz) 2 2.5 m
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The scientific strategy for LCLS is being driven by the mid- to long- term potential of LCLS-II LCLS-II Science opportunities LCLS-II Science opportunities Prioritized 5-10 year budget Prioritized 5-10 year budget SAC July FY16+ April Strategic development plan Strategic development plan Assess how LCLS can address the “grand-challenges” Solicit community-wide input Compile a coherent document of “science opportunities” Derive characteristic performance parameters and technical requirements Perform facility-wide assessment of development needs Solicit community-wide feedback Define year-by-year requirements for R&D, new system deployment, commissioning, and operational delivery 3
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4 Facility Response
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5 LCLS-II Science Opportunities Mapping
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6 Space is a Challenge
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SXU: Flat Mirror 0.4 – 2.5 keV NEH 1.2 SXU: Flat Mirror 0.4 – 2.5 keV NEH 1.2 SXU: Flat Mirror 0.4-2.5 keV NEH 1.2 SXU: Flat Mirror 0.4-2.5 keV NEH 1.2 SXU: Bendable Mirror 0.25 – 1.2 keV NEH 2.1, NEH 2.2 SXU: Bendable Mirror 0.25 – 1.2 keV NEH 2.1, NEH 2.2 HXU: Flat Mirror 1 – 6 keV NEH 1.2 HXU: Flat Mirror 1 – 6 keV NEH 1.2 HXU: Flat Mirror 2.5 – 25 keV XPP, XCS, MFX, CXI, MEC HXU: Flat Mirror 2.5 – 25 keV XPP, XCS, MFX, CXI, MEC SXU: Monochromator 0.25 – 1.2 keV NEH 2.1, NEH 2.2 SXU: Monochromator 0.25 – 1.2 keV NEH 2.1, NEH 2.2 SXU: Bendable Mirror 0.25 – 1.2 keV NEH 2.1 SXU: Bendable Mirror 0.25 – 1.2 keV NEH 2.1 HXU: Flat Mirror 1 - 25 keV NEH 1.2, XPP, XCS, MFX, CXI, MEC HXU: Flat Mirror 1 - 25 keV NEH 1.2, XPP, XCS, MFX, CXI, MEC
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8 Updated Layout – NEH 1 st Floor [Option 1]
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9 Updated Layout – NEH Subbasement [Option 1]
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10 Alternate Options – Option 1 SB 1st SB 1st
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11 Alternate Options – Option 2 SB 1st SB 1st
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12 Alternate Options – Option 3 SB 1st SB 1st
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13 Distribution Optics
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Horizontal Mirror -1.18 deg Horizontal Mirror -1.18 deg Horizontal Mirror -1.18 deg Horizontal Mirror -1.18 deg Vertical Mirror -2.1 deg Vertical Mirror -2.1 deg Horizontal Mirror +3.0 deg Horizontal Mirror +3.0 deg Vertical Grating Mono -4.9 deg Vertical Grating Mono -4.9 deg Horizontal Mirror +0.24/0.70 deg Horizontal Mirror +0.24/0.70 deg Horizontal Mirror +0.70 deg Horizontal Mirror +0.70 deg Horizontal Mirror -0.24 deg Horizontal Mirror -0.24 deg Angles are deflection and follow right hand rule!!! Front End Enclosure (FEE) Horizontal KB +1.6 deg Horizontal KB +1.6 deg Vertical KB +1.6 deg Z=XX m Vertical KB +1.6 deg Z=XX m +X +Z
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15 Acceptance of FEE Mirrors Assumptions: ~120 m source to mirror distance ~ 67 m from end of SXU to FEE ~ 15 m from source to end of SXU ~ 35 m – length of FEE 950 mm mirror useable length 40% larger beam than diffraction limit DescriptionMirror AngleAcceptancePhoton Energy (2x FWHM) HOMS0.12 deg1.99 mm~ 2750 eV HXU Tender0.35 deg5.80 mm~ 1000 eV SXU Tender0.59 deg9.78 mm~ 375 eV AMO KB0.80 deg13.26 mm~ 265 eV 2 nd Floor1.05 deg17.41 mm< 200 eV 2 nd Floor KB1.50 deg24.87 mm< 200 eV Current HOMS
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NEH 1.1 - “AMO 2.0” Horizontal KB +1.6 deg Z=23.8 m Horizontal KB +1.6 deg Z=23.8 m Vertical KB +1.6 deg Z=21.5 m Vertical KB +1.6 deg Z=21.5 m
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Horizontal Mirror -1.18 deg Z=11.3 m Horizontal Mirror -1.18 deg Z=11.3 m Horizontal Mirror -1.18 deg Z=12.3 m Horizontal Mirror -1.18 deg Z=12.3 m Horizontal Mirror +0.70 deg Z=XX m Horizontal Mirror +0.70 deg Z=XX m Horizontal Mirror +0.70 deg Z=XX m Horizontal Mirror +0.70 deg Z=XX m NEH 1.2 – Tender X-ray Instrument
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Vertical Mirror -2.1 deg Z=16.2 m Vertical Mirror -2.1 deg Z=16.2 m Horizontal Mirror +3.0 deg Z=21.5 m Horizontal Mirror +3.0 deg Z=21.5 m Vertical Grating Mono -4.9 deg Z=18.7 m Vertical Grating Mono -4.9 deg Z=18.7 m NEH 2.1 & 2.2 - 2 nd Floor Beamlines
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Vertical Mirror -2.1 deg Z=16.2 m Vertical Mirror -2.1 deg Z=16.2 m Horizontal Mirror +3.0 deg Z=21.5 m Horizontal Mirror +3.0 deg Z=21.5 m Vertical Grating Mono -4.9 deg Z=18.7 m Vertical Grating Mono -4.9 deg Z=18.7 m NEH 2.1 & 2.2 - 2 nd Floor Beamlines M1 FEL sourceGratingSlit R M1 = 900 km R M1 = 12 km R M1 = 4 km R M1 = 3.8 km D. Cocco
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Horizontal Mirror +0.24 deg Z=XX m Horizontal Mirror +0.24 deg Z=XX m Horizontal Mirror -0.24 deg Z=26.7 m Horizontal Mirror -0.24 deg Z=26.7 m Hard X-ray Mirrors (aka HOMS)
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21 Instruments
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22 Instruments (Concepts in Development) NEH 1.1NEH 1.2NEH 2.1NEH 2.2 Primary Science Area(s) Atomic & Molecular Physics High Field Physics Nonlinear Interactions Biology Materials Science Nonlinear Condensed MatterChemistry Condensed Matter Primary X-ray Techniques Electron/Ion Spectroscopy COLTRIMS Scattering PES XES High Res. RIXSModerate Res. RIXS Scattering XES Photon Energy Range 280-2000 eV400 - 6000 eV280 -1200 eV Focal Spot Size3 µm / 200 nm1 µm3 x 10 µm3-5 µm Claim to FameMinimalist 200 nm focus Two FELs at the same time 6-m spectrometer(s)Catch all
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23 End
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24 Backup
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25 Future Expansion of LCLS Complex SLAC has extensive infrastructure that will allow expansion New tunnels are possible north and south of existing LCLS tunnel (complete design for LCLS-II Phase I ) and could be optimized for long, high pulse energy, hard X-ray FEL’s Original research halls: ESA and ESB suitable for shorter, soft X-ray FEL’s
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26 Coarse Cost Estimate (FY15 Dollars) FY16FY17FY18FY19FY20FY21FY22FY23Total NEH Mods2.58.98.70.0 20.0 Conceptual Planning1.0 0.0 2.0 NEH 1.1 – “AMO”0.0 2.21.61.40.0 5.2 NEH 1.2 – “Tender”0.0 0.74.19.00.20.0 14.0 NEH 2.1 – “HR RIXS”0.0 0.53.97.50.011.9 NEH 2.2 – “SXR”0.0 1.04.97.20.8 14.7 Hard X-ray Instruments0.00.72.81.40.00.53.94.213.5 Other (Data, Networks, etc.)0.30.94.90.0 6.2 TOTAL3.812.323.717.39.35.113.26.090.7
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27 NEH 1.1 – Atomic & Molecular Physics Measures energy & momentum of electrons & ions high repetition rateRare coincidence events (~10 -5 ) ⇒ high repetition rate 10 -11 – 10 -12 Torr vacuum requirement10 -11 – 10 -12 Torr vacuum requirement Dynamic Molecular Reaction Microscope for Coincidence Imaging Dynamic Molecular Reaction Microscope for Coincidence Imaging
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28 NEH 1.2 – Tender X-ray Instrument sample shapes of individual, randomly-oriented molecules one-by-one
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29 NEH 2.1 – High Resolution RIXS electron pairing energy ~20 meV Cuprate X-ray Raman Spectrum magnon bi-magnon phonon
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30 NEH 2.2 – Monochromatic Soft X-ray
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31 Schedule
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32 Long Range Operations Schedule
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33 Instrument/Area Leads NEH 1.1 Timur Osipov JC Castanga NEH 1.2 Andy Aquila Paul Montanez NEH 2.1/2.2 Georgi Dakovski Bill Schlotter Dave Rich Daniele Cocco Lin Zhang
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