optical cavity r&d around kek-atf

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T.Takahashi Hiroshima Optical Cavity R&D around KEK-ATF T.Takahashi Hiroshima Univ. Nov. 2008 LCWS08 at Chicago

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Optical Cavity R&D around KEK-ATF. T.Takahashi Hiroshima Univ. Nov. 2008 LCWS08 at Chicago. an idea. Klemiz , Monig. Experimental R/D in ATF. Hiroshima- Waseda -Kyoto-IHEP-KEK. Make a fist prototype 2-mirror cavity. L cav = 420 mm. Put it in ATF ring. accuracy ~ 0.8 m m. - PowerPoint PPT Presentation

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Page 1: Optical Cavity R&D around KEK-ATF

  T.Takahashi Hiroshima

Optical Cavity R&D around KEK-ATF

T.Takahashi Hiroshima Univ. Nov. 2008

LCWS08at Chicago

Page 2: Optical Cavity R&D around KEK-ATF

an ideaKlemiz, Monig

Page 3: Optical Cavity R&D around KEK-ATF

Experimental R/D in ATF

.

Make a fist prototype 2-mirror cavity

Put it in ATF ring

Hiroshima-Waseda-Kyoto-IHEP-KEK

Lcav = 420 mm

Page 4: Optical Cavity R&D around KEK-ATF

4

Set up at KEK-ATF

accuracy ~ 0.8mm

electron beam

Horizontal

Vertical

Optical cavity

Cavity position is moved

Page 5: Optical Cavity R&D around KEK-ATF

Lcav = n Lcav = m Llaser

Laser freq = Ring RF

Feedback to Achieve 3 Conditions

mode locked laser

pulse stacking cavity

Page 6: Optical Cavity R&D around KEK-ATF

6

The appearance of light resonance signal

Reflected light

Transmitted light

the optical cavity is on resonant

Transmitted light

Mirror reflectivity : 99.6%

Mode locked laser

(Photo diode)

PD

time (ms)Continued to change the length of the external cavity.

1ms

0.7nm ~l/enhacement/p

Page 7: Optical Cavity R&D around KEK-ATF

PhaseDetector

Piezo

Piezo

PD

Ref-light

StackingCavity

Laser

PID

RingRFke

ep r

eso

nan

ce

sync. to Acc.laser light

pulses

offset

(Sakaue)

Cross-feedback=Closed loop

Page 8: Optical Cavity R&D around KEK-ATF
Page 9: Optical Cavity R&D around KEK-ATF

R. Cizeron

e- be

am

laser beam

4-mirror cavity

2-mirror cavity

Spot size = 30 umEnhance = 1000

Spot size = 10 umEnhance = 10000

2-mirror-cav to 4-mirror-cav.

difficult to achieve both high enhancement and small spot

Page 10: Optical Cavity R&D around KEK-ATF

α

2D configuration

3D configurationFocal points for horizontal and vertical are not same

Page 11: Optical Cavity R&D around KEK-ATF

R&D of 4 mirrors cavity started

Page 12: Optical Cavity R&D around KEK-ATF

Two resonat peaks due to geometrical phase

Right LeftLinear

Page 13: Optical Cavity R&D around KEK-ATF

Summary and prospects• photon generation by Laser pulse stacking cavity /

accelerator has been demonstrated both for– Polarized electron source (PosiPol)– hard x ray generation (LUCX)

• A project for x ray source has started• All projects going to 4 mirror ring cavity

– Technique with Ring cavity and e-beam will be accumulated in next 3-4year

• Specific study is for 100 m long cavity is necessary– supporting 1m scale mirrors– adaptive optics to maintain phase front– Feed back experiment to cavity design

• 3 Dimensional cavity• polarization

T.Takahashi Hiroshima

Page 14: Optical Cavity R&D around KEK-ATF

Optical Cavity R&D around ATF

• O(10MeV) gs for Compton Based Polarized Positron source.

• Hard X ray (~30keV) sources – LUCX project

• New 5 year project – Compact X ray source w/ SRF electron

accelerator and pulse stacking cavity.

T.Takahashi Hiroshima

Accumulating technique and experiences w/ cavity and accelerators.

ring cavities are being planned as next step

Page 15: Optical Cavity R&D around KEK-ATF

data summarybunch/train

current[mA]

StackedLaser power[W]

gs/crossing exectationnormarizedgs/A/W

Normalized g yield seems to decrease as # bunches/train goes up

Bunch (size, timing) fluctuation in the ATF suspected