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Mitglied der Helmholtz-Gemeinschaft Search for permanent Electric Dipole Moments of light ions (๐, ๐, 3He) in Storage Rings September 18, 2012 Frank Rathmann (on behalf of the BNL-EDM and JEDI collaborations) SPIN2012, JINR, Dubna, Russia Topics ๏ง ๏ง ๏ง ๏ง Introduction Search for Electric Dipole Moments Spin coherence time First direct measurement Resonance Method with RF E(B)-fields ๏ง Conclusion [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 2 What caused the Baryon asymmetry? Carina Nebula: Largest-seen star-birth regions in the galaxy What happened to the antimatter? (nB ๏ญ nB ) / n๏ง Observed 6๏ด10-10 SM expectation ~10-18 WMAP+COBE (2003) Sakharov (1967): Three conditions for baryogenesis 1. B number conservation violated sufficiently strongly 2. C and CP violated, B and anti-Bs with different rates 3. Evolution of universe outside thermal equilibrium [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 3 Electric Dipole Moments (EDMs) Permanent EDMs violate parity P and time reversal symmetry T Assuming CPT to hold, combined symmetry CP violated as well. EDMs are candidates to solve mystery of matter-antimatter asymmetry ๏ฎ may explain why we are here! [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 4 History of neutron EDM limits โข Smith, Purcell, Ramsey PR 108, 120 (1957) โข RAL-Sussex-ILL (dn ๏ผ 2.9 ๏ด10-26 e๏cm) PRL 97,131801 (2006) Adopted from K. Kirch [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 5 Limits for Electric Dipole Moments EDM searches - only upper limits, in ๐๏๐๐ฆ (up to now): ๏พ ๐ ๐ equivalent Particle/Atom Current EDM Limit Future Goal Neutron ๏ผ ๐ ๏ด๐๐โ๐๐ ๏พ๐๐โ๐๐ ๐๐โ๐๐ ๐๐๐๐๐ ๏ผ ๐. ๐ × ๐๐โ๐๐ ๏พ๐๐โ๐๐ ๐๐โ๐๐ ๐๐๐๐๐ ๏ผ ๐ × ๐๐โ๐๐ ๏พ๐๐โ๐๐ โ ๐๐โ๐๐ ๏พ๐๐โ๐๐ โ ๐๐โ๐๐ Proton ๏ผ ๐. ๐ × ๐๐โ๐๐ ๏พ๐๐โ๐๐ ๐๐โ๐๐ Deuteron ? ๏พ๐๐โ๐๐ ๐ ๏ด๐๐โ๐๐ โ ๐ × ๐๐โ๐๐ Huge efforts underway to improve limits / find EDMs Sensitivity to NEW PHYSICS beyond the Standard Model [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 6 Why also EDMs of protons and deuterons? Proton and deuteron EDM experiments may provide one order higher sensitivity. In particular the deuteron may provide a much higher sensitivity than protons. Consensus in the theoretical community: Essential to perform EDM measurements on different targets (๐, ๐, 3He) with similar sensitivity: โข unfold the underlying physics, โข explain the baryogenesis. [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 7 Search for Electric Dipole Moments NEW: EDM search in time development of spin in a storage ring: ๏ฒ ๏ทG ๏ฝ 0 ๏ถ ๏ฒ ๏ฒ ds ๏ฝ d ๏ดE dt [email protected] โFreezeโ horizontal spin precession; watch for development of a vertical component ! Search for permanent Electric Dipole Moments of light ions in Storage Rings 8 Search for Electric Dipole Moments NEW: EDM search in time development of spin in a storage ring: ๏ฒ ๏ทG ๏ฝ 0 ๏ถ ๏ฒ ๏ฒ ds ๏ฝ d ๏ดE dt โFreezeโ horizontal spin precession; watch for development of a vertical component ! A magic storage ring for protons (electrostatic), deuterons, โฆ particle ๐ (๐๐๐/๐) ๐ฌ (๐๐/๐ฆ) ๐ฉ (๐) proton ๐. ๐๐๐ ๐๐. ๐๐๐ ๐. ๐๐๐ deuteron ๐. ๐๐๐ โ๐. ๐๐๐ ๐. ๐๐๐ ๐๐๐ ๐. ๐๐๐ ๐๐. ๐๐๐ โ๐. ๐๐๐ [email protected] One machine with ๐ ~ ๐๐ m Search for permanent Electric Dipole Moments of light ions in Storage Rings 9 Two storage ring projects being pursued BNL for protons all electric machine Jülich, focus on deuterons, or a combined machine CW and CCW propagating beams (from R. Talman) [email protected] (from A. Lehrach) Search for permanent Electric Dipole Moments of light ions in Storage Rings 10 Most recent: Richard Talmans concept for a Jülich all-in-one machine Iron-free, current-only, magnetic bending, eliminates hysteresis B A B A [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 11 BNL Proposal 2 beams simultaneously rotating in an all electric ring (cw, ccw) Approved BNL-Proposal Submitted to DOE Goal for protons ๏ณ d ๏ป 2.5 ๏ด10๏ญ29 e ๏ cm (one year) p Circumference ~ 200 m Technological challenges ! โข โข โข โข Spin coherence time (๐๐๐๐ ๐ฌ) Beam positioning (๐๐ ๐ง๐ฆ) Continuous polarimetry (< ๐ ๐ฉ๐ฉ๐ฆ) E - field gradients (~ ๐๐ ๐๐/๐ฆ ๐๐ญ ๐ ๐๐ฆ) Carry out proof of principle experiments (demonstrators) at COSY [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 12 The frozen spin Method ๏ฒ ๏ฒ ๏ฒ ๏ฒ For transverse electric and magnetic fields in a ring ( ๏ข ๏ B ๏ฝ ๏ข ๏ E ๏ฝ 0 ), anomalous spin precession is described by ๏ฒ ๏ฒ๏ผ 2 ๏ฌ ๏ฉ ๏น ๏ฆm๏ถ ๏ข ๏ดE๏ฏ ๏ฒ q๏ฏ ๏ฒ ๏ทG ๏ฝ ๏ญ ๏ญG ๏ B ๏ซ ๏ชG ๏ญ ๏ง๏ง ๏ท๏ท ๏บ ๏ฝ m๏ฏ p c ๏ช๏ซ ๏จ ๏ธ ๏บ๏ป ๏ฏ๏พ ๏ฎ x g ๏ญ2๏ถ ๏ฆ G ๏ฝ ๏ง ๏ท 2 ๏จ ๏ธ Magic condition: Spin along momentum vector 1. For any sign of ๐บ, in a combined electric and magnetic machine GBc๏ข๏ง 2 2 E๏ฝ ๏ป GBc ๏ข๏ง 1 ๏ญ G๏ข 2๏ง 2 ๐ธ = ๐ธradial ๐ต = ๐ตvertical 1. For ๐บ > 0 (protons) in an all electric ring 2 ๏ฆm๏ถ m MeV ๏ง ๏ท G ๏ญ๏ง ๏ท ๏ฝ 0 ๏ฎ p ๏ฝ ๏ฝ 700.74 G c ๏จ p๏ธ [email protected] (magic) Search for permanent Electric Dipole Moments of light ions in Storage Rings 13 Magic condition: Protons Case 1: ๐ซ๐๐๐ข๐๐ฅ ๐ฌ field only ๏จ r2๏จ 280 ๏ฌ๏ m3He ๏ฌ๏ ๏ญ0.0 r2 250 ๏ฌ๏ md ๏ฌ๏ 0.48 ๏ฌ๏ G Proton EDM 100 radius (m) 80 ๐ธ = 17 MV/m 60 r1( E) 40 ๐ = 24.665 m 20 0 5 10 15 20 25 30 35 E E-field (MV/m) [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 14 Parameters for Jülich all-in-one machine (R. Talmans concept ) Talman/Gebel give maximum achievable field of copper magnets of ~ 0.15 T. ๐ = ๐๐ ๐ฆ particle ๐ (๐๐๐/๐) ๐ป (๐๐๐) ๐ฌ (๐๐/๐ฆ) ๐ฉ (๐) proton ๐๐๐. ๐ ๐๐๐. ๐ ๐. ๐ โ๐. ๐๐๐ deuteron ๐๐๐. ๐ ๐๐. ๐ โ๐. ๐ โ๐. ๐๐๐ ๐๐๐ ๐๐๐. ๐ ๐๐. ๐ ๐๐. ๐๐๐ โ๐. ๐๐๐ โข Fitting such a machine into the COSY building favors lower momenta. [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 15 EDM at COSY โ COoler SYnchrotron Cooler and storage ring for (polarized) protons and deuterons ๐ = 0.3 โ 3.7 GeV/c Phase space cooled internal & extracted beams Injector cyclotron [email protected] COSY โฆ the spin-physics machine for hadron physics Search for permanent Electric Dipole Moments of light ions in Storage Rings 16 EDM at COSY โ COoler SYnchrotron Cooler and storage ring for (polarized) protons and deuterons ๐ = 0.3 โ 3.7 GeV/c Phase space cooled internal & extracted beams Injector cyclotron [email protected] COSY โฆ an ideal starting point for a srEDM search Search for permanent Electric Dipole Moments of light ions in Storage Rings 17 Spin closed orbit one particle with magnetic moment makes one turn nฬCO โspin closed orbit vectorโ โspin tuneโ ๏ฒ S A๏ข 2๏ฐ๏ฎ s ๏ฒ SA ring A [email protected] stable polarization ๏ฒ if S โ nฬCO Search for permanent Electric Dipole Moments of light ions in Storage Rings 18 Spin coherence We usually donโt worry about coherence of spins along nฬCO Polarization not affected! At injection all spin vectors aligned (coherent) After some time, spin vectors get out of phase and fully populate the cone ๏ฒ Situation very different, when you deal with S ๏ nฬCO nฬCO Longitudinal polarization vanishes! At injection all spin vectors aligned [email protected] After some time, the spin vectors are all out of phase and in the horizontal plane In an EDM machine with frozen spin, observation time is limited. Search for permanent Electric Dipole Moments of light ions in Storage Rings 19 Estimate of spin coherence times (N.N. Nikolaev) One source of spin coherence are random variations of the spin tune due to the momentum spread in the beam ๐ฟ๐ = ๐บ๐ฟ๐พ ๐ฟ๐พ and is randomized by e.g., electron cooling cos ๐๐ก โ cos ๐๐ก + ๐ฟ๐ ๐๐ ๐ โ Estimate: 1 ๐rev ๐บ 2 ๐ฟ๐พ 2 1 ๐ฟ๐2 โ ๐rev ๐บ 2 ๐พ 2 ๐ฝ 4 ๐ ๐kin = 100 MeV ๐rev = 0.5 MHz ๐บ๐ = 1.79 ๐บ๐ = โ0.14 ๐๐ ๐ (๐) โ 3 โ 103 s ๐๐ ๐ (๐) โ 5 โ 105 s โ1 Spin coherence time for deuterons may be ๐๐๐ × larger than for protons [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 20 First measurement of spin coherence time 2011 Test measurements at COSY Polarimetry: Spin coherence time: 5s 25 s 5s decoherence oscillation time capture [email protected] from Ed Stephenson and Greta Guidoboni Search for permanent Electric Dipole Moments of light ions in Storage Rings 21 Topics ๏ง ๏ง ๏ง ๏ง Introduction Search for Electric Dipole Moments Spin coherence time First direct measurement Resonance Method with RF E(B)-fields ๏ง Conclusion [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 22 Resonance Method with โmagicโ RF Wien filter Avoids coherent betatron oscillations of beam. Radial RF-E and vertical RF-B fields to observe spin rotation due to EDM Approach pursued for a first direct measurement at COSY. ๐ธ โ = 0 ๏ ๐ธ๐ = โ๏ข๏ด๐ต๐ฆ โMagic RF Wien Filterโ no Lorentz force Indirect EDM effect RF E(B)-field stored d Polarimeter (dp elastic) Tilt of precession plane due to EDM In-plane polarization Observable: Accumulation of vertical polarization during spin coherence time Statistical sensitivity for ๐ ๐ in the range ๐๐โ๐๐ to ๐๐โ๐๐ ๐๏๐๐ฆ range possible. โข Alignment and field stability of ring magnets โข Imperfection of RF-E(B) flipper [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 23 Operation of โmagicโ RF Wien filter ๐๐ป๐ Radial E and vertical B fields oscillate, e.g., with = ๐พ + ๐บ๐พ โ ๐rev = โ54.151 × 103 Hz (here ๐พ = 0). beam energy ๐๐ = 50 MeV Spin coherence time may depend on excitation and on chosen harmonics ๐พ. [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 24 Simulation of resonance Method with โmagicโ Wien filter for deuterons at COSY Parameters: beam energy assumed EDM E-field ๐๐ = 50 MeV ๐๐ = 10โ24 e๏cm 30 kV/cm ๐ฟRF = 1 m Linear extrapolation of ๐๐ฆ for a time period of ๏ด๐ ๐ = 1000 s = 3.7๏108 turns . EDM effect accumulates in ๐๐ฆ. ๐๐ฅ Preliminary, based on K. Nikolaevs derivation of the combined rotation matrices of E/B flipper and ring ๐๐ง ๐๐ฆ ๐ = 2๐๐๐๐๐ฃ ๐บ๐พ = โ3.402 × 105 Hz turn number [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 25 Simulation of resonance Method with โmagicโ Wien filter for deuterons at COSY Parameters: beam energy assumed EDM E-field ๐๐ = 50 MeV ๐๐ = 10โ24 e๏cm 30 kV/cm ๐ฟRF = 1 m Linear extrapolation of ๐๐ฆ for a time period of ๏ด๐ ๐ = 1000 s (= 3.7๏108 turns). ๐๐๐ฆ ๐ฆ EDM effect accumulates in ๐๐ฆ turn number [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 26 Simulation of resonance Method with Magic Wien filter for deuterons at COSY Parameters: beam energy assumed EDM E-field ๐๐ = 50 MeV ๐๐ = 10โ24 e๏cm 30 kV/cm ๐ฟ๐ ๐น = 1 m Linear extrapolation of ๐๐ฆ for a time period of ๏ด๐ ๐ = 100000 s (= 3.7๏1010 turns). ๐๐ฆ EDM effect accumulates in ๐๐ฆ turn number [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 27 Technically driven timeline for all-electric pEDM at BNL 12 13 14 15 16 17 18 19 20 21 Two years R&D/preparation One year final ring design Two years ring/beam-line construction Two years installation One year โstring testโ [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 28 Stepwise approach for all-in-one machine for JEDI Step Aim / Scientific goal 1 2 Device / Tool Storage ring Spin coherence time studies Horizontal RF-B spin flipper COSY Systematic error studies Vertical RF-B spin flipper COSY COSY upgrade Orbit control, magnets, โฆ COSY First direct EDM measurement at ๐๐โ๐๐ ๐๏๐๐ฆ RF-E(B) spin flipper Modified COSY 3 Built dedicated all-in-one ring Common magneticfor p, d, 3He electrostatic deflectors Dedicated ring 4 EDM measurement of p, d, 3He at ๐๐โ๐๐ ๐๏๐๐ฆ Dedicated ring Time scale: Steps 1 and 2: < 5 years Steps 3 and 4: > 5 years [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 29 srEDM cooperations International srEDM Network Institutional (MoU) and Personal (Spokespersons โฆ) Cooperation, Coordination srEDM Collaboration (BNL) JEDI Collaboration (FZJ) (spokesperson Yannis Semertzidis) (spokespersons: A. Lehrach, J. Pretz, F.R.) Common R&D RHIC Beam Position Monitors (โฆ) EDM-at-COSY Polarimetry Spin Coherence Time Cooling Spin Tracking (โฆ) Study Group DOE-Proposal (submitted) CD0, 1, โฆ pEDM Ring at BNL [email protected] First direct measurement Ring Design HGF Application(s) JEDI Search for permanent Electric Dipole Moments of light ions in Storage Rings 30 Summary โข Measurements of EDMs are extremely difficult, but the physics is fantastic! โข Two storage ring projects, at BNL and Jülich โข All-in-one machine with copper-only magnets โข Pursue spin coherence time measurements at COSY โข First direct EDM measurement at COSY Resonance Method with RF E(B) -fields โข JEDI collaboration established [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 31 Georg Christoph Lichtenberg (1742-1799) โMan muß etwas Neues machen, um etwas Neues zu sehen.โ โYou have to make (create) something new, if you want to see something newโ [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 32 Spares [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 33 Magic condition: Protons Case 2: ๐ซ๐๐๐ข๐๐ฅ ๐ฌ and ๐ฏ๐๐ซ๐ญ๐ข๐๐๐ฅ ๐ฉ fields ๐ต>0 ๐ต<0 magic energy [email protected] ๐ต>0 ๐ต<0 magic energy Search for permanent Electric Dipole Moments of light ions in Storage Rings 34 Magic condition: Deuterons ๐ซ๐๐๐ข๐๐ฅ ๐ฌ and ๐ฏ๐๐ซ๐ญ๐ข๐๐๐ฅ ๐ฉ fields [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 35 Magic condition: Helions ๐ซ๐๐๐ข๐๐ฅ ๐ฌ and ๐ฏ๐๐ซ๐ญ๐ข๐๐๐ฅ ๐ฉ fields [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 36 Some polarimetry issues pC and dC polarimetry is the currently favored approach for the pEDM experiment at BNL srEDM experiments use frozen spin mode, i.e., beam mostly polarized along direction of motion, most promising ring options use cw & ccw beams. โข scattering on C destructive on beam and phase-space, โข scattering on C determines polarization of mainly particles with large betatron amplitudes, and ๐๐ฅ โข is not capable to determine ๐ = ๐๐ฆ . ๐๐ง โข For elastic scattering longitudinal analyzing powers are tiny (๐ด๐ง violates parity). Ideally, use a method that would determine ๐(๐ก). [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 37 Exploit observables that depend on beam and target polarization ๐๐ฅ beam 1 ๐ = ๐๐ฆ ๐๐ง ๐๐ฅ target (or beam 2) ๐ = ๐๐ฆ ๐๐ง Spin-dependent differential cross section for 1 2 ๐ฆ (up) + 1 2 1 1 โ2+2 ๐ ๐ฅ (sideways) ๐ ๐ง (along beam) ๐ = 1 + ๐ด๐ฆ ๐๐ฆ + ๐๐ฆ cos ๐ โ ๐๐ฅ + ๐๐ฅ sin ๐ ๐0 + ๐ด๐ฅ๐ฅ ๐๐ฅ ๐๐ฅ cos2 ๐ + ๐๐ฆ ๐๐ฆ sin2 ๐ + ๐๐ฅ ๐๐ฆ + ๐๐ฆ ๐๐ฅ sin ๐ cos ๐ + ๐ด๐ฆ๐ฆ ๐๐ฅ ๐๐ฅ sin2 ๐ + ๐๐ฆ ๐๐ฆ cos 2 ๐ โ ๐๐ฅ ๐๐ฆ + ๐๐ฆ ๐๐ฅ sin ๐ cos ๐ + ๐ด๐ฅ๐ง ๐๐ฅ ๐๐ง + ๐๐ง ๐๐ฅ cos ๐ + ๐๐ฆ ๐๐ง + ๐๐ง ๐๐ฆ sin ๐ + ๐ด๐ง๐ง ๐๐ง ๐๐ง Analyzing power ๐ด๐ฆ = ๐ด๐ฆ ๐ Spin correlations ๐ด๐๐ = ๐ด๐๐ (๐) In ๐๐ scattering, necessary observables are well-known in the range 50 โ 2000 MeV (not so for ๐๐ or ๐๐). [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 38 How could one do that, determine ๐ท ? Suggestion 1: Use a polarized H storage cell target Detector CW CCW cell โข Detector determines ๐ of cw & ccw beams separately, based on kinematics. โข Alignment of target polarization ๐ along ๐ฅ, ๐ฆ, ๐ง axes by magnetic fields. Leads to unwanted MDM rotations ๏ฎ absolute no-go in EDM experiments. [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 39 How could one do that, determine ๐ท ? Suggestion 2: Use colliding beam from external source ๐๐ฅ cw beam ๐ = ๐๐ฆ ๐๐ง ๐๐ฅ 0 0 ๐๐ฅ probing beam ๐ = ๐Detector 0 , ๐๐ฆ , or 0 ๐ฆ = ๐๐ง ๐๐ง 0 0 ๐ = 1 + ๐ด๐ฆ ๐๐ฆ + ๐ธ๐ cos ๐ โ ๐๐ฅ + ๐ธ๐ sin ๐ ๐0 + ๐ด๐ฅ๐ฅ ๐๐ฅ ๐ธ๐ cos2 ๐ + ๐๐ฆ ๐ธ๐ sin2 ๐ + ๐๐ฅ ๐ธ๐ + ๐๐ฆ ๐ธ๐ sin ๐ cos ๐ Polarized ion source 2 ๐ โ ๐ ๐ธ + ๐ ๐ธ sin ๐ cos ๐ + ๐ด๐ฆ๐ฆ ๐๐ฅ ๐ธ๐ sin2 ๐ + ๐๐ฆ ๐ธ๐ cos(~10 MeV) ๐ฅ ๐ ๐ฆ ๐ + ๐ด๐ฅ๐ง ๐๐ฅ ๐ธ๐ + ๐๐ง ๐ธ๐ cos ๐ + ๐๐ฆ ๐ธ๐ + ๐๐ง ๐ธ๐ sin ๐ + ๐ด๐ง๐ง ๐๐ง ๐ธ๐ โข Collide two external beams with cw and ccw stored beams. โข Energy could be tuned to match detector acceptance. โข Polarization components of probing low-energy beam can be made large, would be selected by spin rotators in the transmission lines. โข Luminosity estimates necessary [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 40 How could one do that, determine ๐ท ? Suggestion 3: Use directly reactions from colliding beams ๐๐ฅ cw beam ๐ = ๐๐ฆ ๐๐ง ๐๐ฅ ccw beam ๐ = ๐๐ฆ ๐๐ง CW Detector CCW ๐ = 1 + ๐ด๐ฆ ๐๐ฆ + ๐๐ฆ cos ๐ โ ๐๐ฅ + ๐๐ฅ sin ๐ ๐0 + ๐ด๐ฅ๐ฅ ๐๐ฅ ๐๐ฅ cos2 ๐ + ๐๐ฆ ๐๐ฆ sin2 ๐ + ๐๐ฅ ๐๐ฆ + ๐๐ฆ ๐๐ฅ sin ๐ cos ๐ + ๐ด๐ฆ๐ฆ ๐๐ฅ ๐๐ฅ sin2 ๐ + ๐๐ฆ ๐๐ฆ cos2 ๐ โ ๐๐ฅ ๐๐ฆ + ๐๐ฆ ๐๐ฅ sin ๐ cos ๐ + ๐ด๐ฅ๐ง ๐ท๐ ๐ธ๐ + ๐ท๐ ๐ธ๐ cos ๐ + ๐ท๐ ๐ธ๐ + ๐ท๐ ๐ธ๐ sin ๐ + ๐ด๐ง๐ง ๐ท๐ ๐ธ๐ Requires luminosity, ๐ฝ-functions at IP should be rather small. โข Advantage over suggestion 2. is that ๐rev supports luminosity. โข Disadvantage is that sensitivity comes mainly from terms with ๐ด๐ฅ๐ง and ๐ด๐ง๐ง. โข Detailed estimates necessary. [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 41 Luminosity estimate for the collider option Tmagic = 232.8 MeV ๐(๐ฝ) = ๐โ๐ฝ ๐1 ๐2 ๐rev (๐)๐๐ ๐ฟ(๐, ๐ฝ) = 4๐๐(๐ฝ)2 Luminosity ๐ฝ = 0.1 m Conditions: ๏ฅ = 1 ๏ญm ๐1 = ๐2 = 1011 ๐๐ = 4 ๐ (๐ฆ) ๐ (๐ฆ๐ฆ) 10 3.2 1 1 0.1 0.32 ๐ฝ =1m ๐ฝ = 10 m kinetic energy (MeV) Even under these very optimistic assumptions, event rate will be rather low. ๐๐๐ญ๐ = ๐ณ × ๏ณ๐๐ = 3.1 โ 1028 [cmโ2 sโ1 ] × 10โ27 [cm2 mbโ1 ] × 15[mb] โ ๐๐๐ ๐ฌ โ๐ [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 42 Resonance Method with RF E-fields spin precession governed by: (* rest frame) Two situations: 1. ๐ตโ = 0 ๏ ๐ต๐ฆ = ๏ข๏ด๐ธ๐ (= 70 G for ๐ธ๐ = 30 kV/cm) 2. ๐ธ โ = 0 ๏ ๐ธ๐ = โ๏ข๏ด๐ต๐ฆ RF E-field EDM effect no EDM effect vertical polarization stored d Polarimeter (dp elastic) This way, the EDM signal is accumulated during the cycle. โข Statistical improvement over single turn effect is about: 1000s / 1๏ญs ๏ป 105 . โข Brings us in the 10โ24 e๏cm range for ๐๐ . โข But: Flipping fields will lead to coherent betatron oscillations, with hard to handle systematics. [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 43 Simulation of resonance Method with RF E-fields for deuterons at COSY Parameters: beam energy assumed EDM E-field Constant E-field Number of turns [email protected] ๐๐ = 50 MeV ๐๐ = 10โ20 e๏cm 10 kV/cm ๐ฟRF = 1 m E-field reversed every โ๏ฐ/(๐บ๏๏ง) โ 21 turns Number of turns Search for permanent Electric Dipole Moments of light ions in Storage Rings 44 Simulation of resonance Method with RF E-fields for deuterons at COSY Parameters: beam energy assumed EDM E-field Linear extrapolation of P ๏ฝ ๐๐ = 50 MeV ๐๐ = 10โ20 e๏cm 10 kV/cm Px2 ๏ซ Pz2 for a time period of ๏ด๐ ๐ = 1000 s (= 3.7๏108 turns) EDM effect accumulates Polarimeter determines ๐๐ฅ, ๐๐ฆ and ๐๐ง Number of turns [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 45 Symmetries Physical laws are invariant under certain transformations. Parity: ๐ท: ๐ โ๐ ๐ โ โ๐ ๐ โ๐ T-Symmetry: ๐ป: ๐ โ โ๐ C-parity (or Charge parity): [email protected] Changes sign of all quantized charges โข electrical charge, โข baryon number, โข lepton number, โข flavor charges, โข Isospin (3rd-component) Search for permanent Electric Dipole Moments of light ions in Storage Rings 46 EDM Workshop at ECT* (Trento) October 1-5, 2012 http://www.ectstar.eu/ Organizing committee ๏ญ Jülich Hans Ströher [email protected] Frank Rathmann [email protected] Andreas Wirzba [email protected] ๏ญ Brookhaven Mei Bai [email protected] William Marciano [email protected] Yannis Semertzidis [email protected] [email protected] Search for permanent Electric Dipole Moments of light ions in Storage Rings 47