SL_COMB. The SL_COMB experiment at SPARC_LAB will operate in the so-called quasinonlinear regime, defined by the dimensionless charge quantity

Similar documents
OPTIMIZING RF LINACS AS DRIVERS FOR INVERSE COMPTON SOURCES: THE ELI-NP CASE

SPARCLAB. Source For Plasma Accelerators and Radiation Compton. On behalf of SPARCLAB collaboration

SPARCLAB. Source For Plasma Accelerators and Radiation Compton with Laser And Beam

FEL experiments at SPARC

1 Introduction. Figure 1: SPARC LAB Thomson source schematic layout.

Opto-acoustic measurements for plasma diagnostics

Diagnostic Systems for Characterizing Electron Sources at the Photo Injector Test Facility at DESY, Zeuthen site

External Injection in Plasma Accelerators. R. Pompili, S. Li, F. Massimo, L. Volta, J. Yang

VELA/CLARA as Advanced Accelerator Studies Test-bed at Daresbury Lab.

Accelerator Activities at PITZ

Part V Undulators for Free Electron Lasers

Electron Spectrometer for FLASHForward Plasma-Wakefield Accelerator

PoS(EPS-HEP2017)533. First Physics Results of AWAKE, a Plasma Wakefield Acceleration Experiment at CERN. Patric Muggli, Allen Caldwell

SPARC. 1 Introduction

Free-electron laser SACLA and its basic. Yuji Otake, on behalf of the members of XFEL R&D division RIKEN SPring-8 Center

Beam Shaping and Permanent Magnet Quadrupole Focusing with Applications to the Plasma Wakefield Accelerator

AWAKE: The Proton Driven Plasma Wakefield Acceleration Experiment at CERN. Alexey Petrenko on behalf of the AWAKE Collaboration

Generation and characterization of ultra-short electron and x-ray x pulses

X-ray Free-electron Lasers

Experimental Optimization of Electron Beams for Generating THz CTR and CDR with PITZ

Linac Driven Free Electron Lasers (III)

An Adventure in Marrying Laser Arts and Accelerator Technologies

Linac Based Photon Sources: XFELS. Coherence Properties. J. B. Hastings. Stanford Linear Accelerator Center

Chan Joshi UCLA With help from Weiming An, Chris Clayton, Xinlu Xu, Ken Marsh and Warren Mori

Laser-driven undulator source

Particle Driven Acceleration Experiments

NON LINEAR PULSE EVOLUTION IN SEEDED AND CASCADED FELS

DIAGNOSTIC TEST-BEAM-LINE FOR THE MESA INJECTOR

UCLA Neptune Ramped Bunch Experiment. R. Joel England UCLA Department of Physics and Astronomy Particle Beam Physics Laboratory May 19, 2004

AREAL Test Facility for Advanced Accelerator and Radiation Sources Concepts

BEAM DIAGNOSTICS CHALLENGES

SINBAD. Ralph W. Aßmann Leading Scientist, DESY. LAOLA Collaboration Meeting, Wismar

arxiv: v1 [physics.acc-ph] 1 Jan 2014

Dielectric Accelerators at CLARA. G. Burt, Lancaster University On behalf of ASTeC, Lancaster U., Liverpool U., U. Manchester, and Oxford U.

Time resolved transverse and longitudinal phase space measurements at the high brightness photo injector PITZ

Outlook for PWA Experiments

The New Superconducting RF Photoinjector a High-Average Current & High-Brightness Gun

4 FEL Physics. Technical Synopsis

SPPS: The SLAC Linac Bunch Compressor and Its Relevance to LCLS

LCLS Injector Prototyping at the GTF

EO single-shot temporal measurements of electron bunches

Simulations of the IR/THz Options at PITZ (High-gain FEL and CTR)

SRF GUN CHARACTERIZATION - PHASE SPACE AND DARK CURRENT MEASUREMENTS AT ELBE*

Observation of Ultra-Wide Bandwidth SASE FEL

Low slice emittance preservation during bunch compression

Excitements and Challenges for Future Light Sources Based on X-Ray FELs

Excitements and Challenges for Future Light Sources Based on X-Ray FELs

Recent developments in the Dutch Laser Wakefield Accelerators program at the University of Twente: New external bunch injection scheme.

Measurement of wakefields in hollow plasma channels Carl A. Lindstrøm (University of Oslo)

PAL LINAC UPGRADE FOR A 1-3 Å XFEL

Laser acceleration of electrons at Femilab/Nicadd photoinjector

Electron Linear Accelerators & Free-Electron Lasers

High Energy Gain Helical Inverse Free Electron Laser Accelerator at Brookhaven National Laboratory

II) Experimental Design

Short Pulse, Low charge Operation of the LCLS. Josef Frisch for the LCLS Commissioning Team

VARIABLE GAP UNDULATOR FOR KEV FREE ELECTRON LASER AT LINAC COHERENT LIGHT SOURCE

Accelerator Physics Issues of ERL Prototype

Brightness and Coherence of Synchrotron Radiation and Free Electron Lasers. Zhirong Huang SLAC, Stanford University May 13, 2013

Experimental Path to Echo-75 at NLCTA

Towards a Low Emittance X-ray FEL at PSI

An Introduction to Plasma Accelerators

Accelerator R&D Opportunities: Sources and Linac. Developing expertise. D. Rubin, Cornell University

Results of the Energy Doubler Experiment at SLAC

Vertical Polarization Option for LCLS-II. Abstract

Layout of the HHG seeding experiment at FLASH

Start-to-End Simulations

Two-Stage Chirped-Beam SASE-FEL for High Power Femtosecond X-Ray Pulse Generation

Simulations of the IR/THz source at PITZ (SASE FEL and CTR)

Measuring very low emittances using betatron radiation. Nathan Majernik October 19, 2017 FACET-II Science Workshop

Hiromitsu TOMIZAWA XFEL Division /SPring-8

STATUS OF E-157: METER-LONG PLASMA WAKEFIELD EXPERIMENT. Presented by Patrick Muggli for the E-157 SLAC/USC/LBNL/UCLA Collaboration

UCLA Neptune Facility for Advanced Accelerator Studies

ENERGY DEPOSITION EFFECTS OF THE X PHOTON BEAM ON THE MIRROR OF PLASMON-X EXPERIMENT AT LI2FE. Francesco Broggi, Luca Serafini

X-band RF driven hard X-ray FELs. Yipeng Sun ICFA Workshop on Future Light Sources March 5-9, 2012

Developments for the FEL user facility

FURTHER UNDERSTANDING THE LCLS INJECTOR EMITTANCE*

Injector Experimental Progress

X-band Experience at FEL

External injection of electron bunches into plasma wakefields

Investigations on the electron bunch distribution in the longitudinal phase space at a laser driven RF-electron source for the European X-FEL

Diagnostics Needs for Energy Recovery Linacs

LIGHT. ...from laser ion acceleration to future applications. - project overview and lates experimental results -

SCSS Prototype Accelerator -- Its outline and achieved beam performance --

AREAL. Test Facility for Advanced Accelerator and Radiation Sources Concepts. Part.1 Introduction. V. Tsakanov CANDLE SRI

Femto-second FEL Generation with Very Low Charge at LCLS

FLASH/DESY, Hamburg. Jörg Rossbach University of Hamburg & DESY, Germany - For the FLASH Team -

Introduction. Thermoionic gun vs RF photo gun Magnetic compression vs Velocity bunching. Probe beam design options

Research Topics in Beam Physics Department

Analogical optical modeling of the asymmetric lateral coherence of betatron radiation

The Production of High Quality Electron Beams in the. Laser Wakefield Accelerator. Mark Wiggins

FREE-ELECTRON LASER FACILITY(U) NATIONAL BUREAU OF STANDARDS GAITHERSBURG NO P H DEBENHdAN ET AL UNCLASSIFIED F/G 14/2 NI

Study of a THz IFEL prebuncher for laser-plasma accelerators

E200: Plasma Wakefield Accelera3on

Development of reliable and sophisticated photo injector system and future plan

R&D experiments at BNL to address the associated issues in the Cascading HGHG scheme

Overview of accelerator science opportunities with FACET ASF

External Injection experiment at the SPARC_LAB facility. Andrea R. Rossi INFN - MI on behalf of the SPARC_LAB team

Introduction to electron and photon beam physics. Zhirong Huang SLAC and Stanford University

Coherent THz Pulses: Source and Science at the NSLS

Diagnostic Systems for High Brightness Electron Injectors

Transcription:

SL_COMB E. Chiadroni (Resp), D. Alesini, M. P. Anania (Art. 23), M. Bellaveglia, A. Biagioni (Art. 36), S. Bini (Tecn.), F. Ciocci (Ass.), M. Croia (Dott), A. Curcio (Dott), M. Daniele (Dott), D. Di Giovenale (Art. 36), M. Ferrario, A. Gallo, C. Gatti, A. Ghigo, D. Giulietti (Ass.), R. Pompili (Art.36), S. Romeo (Dott), V. Shpakov (Ass. Ric.), J. Scifo (Ass. Ric.), C. Vaccarezza, F. Villa (Art. 23) 1. Experiment description The experiment called SL$\_$COMB aims at the acceleration of high brightness electron beams by resonant plasma wakefields. At this regard, a train of high brightness bunches with THz repetition rate, so-called comb beam, is properly generated at the cathode, and manipulated through the velocity bunching technique, in order to be injected in a H 2 -filled plasma discharge capillary. A train of driver bunches separated by a plasma wavelength, λ p, corresponding in our case to 1 ps, resonantly excites a plasma wake, which accelerates a trailing witness bunch injected at the accelerating phase. The SL_COMB experiment at SPARC_LAB will operate in the so-called quasinonlinear regime, defined by the dimensionless charge quantity Q N bkp 3 < 1 n 0 being N b the driver number of particles, k p =2π / λ p the plasma wavenumber. At SPARC LAB, a 3-5 cm long sapphire capillary (1 mm diameter) will be used and operated with a high voltage discharge circuit (20 kv, 200 A) to ionize the hydrogen gas filling the capillary. Assuming a plasma density n 0 =10 16 cm -3, the plasma wavelength is λ p = 330 µm, corresponding to an oscillation period of 1 ps. The goal of the experiment is to provide an adequate accelerating gradient of the order of 1 GV/m, while preserving the brightness of the accelerated witness beam, i.e. low energy spread (ΔE/E < 1%) and transverse normalized emittance of the order of 1 mm mrad. 2. Activity The activity in 2015 was focused on the preparation of the experiment as a whole, spanning from experimental studies on electron beam dynamics, simulations to investigate beam transport, beam-plasma interaction and extraction of the accelerated beam, and preparation of advanced electron beam and plasma diagnostics. 2.1 Experimental beam dynamics and simulation studies A train of multiple bunches is directly produced at the photo-cathode through a comblike laser pulse, as generated by birefringent crystals. In addition, a delay line has been set up to take full control of the witness temporal position with respect to the last (1)

driver. Finally half wave plates have been used for producing an unbalance of laser intensity, which turns into a ramp of charge. By combining the laser comb technique, to produce train of bunches at the cathode, with the velocity bunching regime, to rotate the longitudinal phase space allowing the generation of a train of ultra-short (few tens of femtosecond scale) electron bunches, we succeeded in experimentally manipulating and characterizing trains of up to five bunches, 4 drivers with ramped charge and 1 witness, whose parameters are listed in Table 1 and both the longitudinal phase space and the current distributions are shown in Fig. 1. Table 1: Measured driver and witness beams parameters Beam Energy (MeV) Energy spread (%) Position (ps) Bunch duration (ps) Charge (pc) Witness Beam Beam 4 Beam 3 Beam 2 Beam 1 Whole Beam 112.584(0.009) 0.084(0.001) 2.36(0.03) <0.088(0.001) 24.0 (0.3) 112.281(0.009) 0.159(0.001) 3.93 (0.03) 0.042(0.001) 74.9 (0.5) 112.170(0.009) 0.112(0.001) 5.31(0.03) 0.092(0.001) 69.4(0.4) 112.255(0.008) 0.087(0.001) 6.10 (0.03) 0.113(0.001) 36.3(0.2) 112.197(0.008) 0.045(0.013) 7.01 (0.02) <0.100(0.024) 15.0 (0.2) 112.269(0.009) 0.162(0.001) 4.77(0.03) 1.275(0.003) 220 (1) Figure 1: Longitudinal phase space (left) and current distribution (right) for the 4 ramp drivers and 1 witness beam.

The transverse normalized emittance in the horizontal plane has been measured for each bunch in the train by means of the RF deflecting cavity, which deflects the beam vertically, combined with the well-known quadrupole scan technique, resulting in 1 mm mrad for the witness beam. From the numerical point of view, we started to simulate the case of one driver (200 pc, 190 fs) and one witness (20 pc, 40 fs), whose results are reported in Fig.2: the witness experiences about 1.1 GV/m accelerating field with an energy spread around 1.5% (left plot) thanks to its longitudinal matching and short duration. The witness envelope and emittance are depicted in Fig. 2 (right plot), showing a mitigation of envelope oscillations and the preservation of emittance along the capillary. Simulations of beam driven plasma wakefield acceleration (PWFA) have been performed by means of a hybrid kinetic fluid code, named as Architect [ref]. Figure 2: Beam evolution along the capillary: (a) Energy gain and witness energy spread; (b) envelope (blue) and emittance (red) of the witness bunch. 2.2 Experimental apparatus for plasma acceleration experiment The vacuum chamber for PWFA experiments has been finalized, vacuum tested and installed on the main line right after the third accelerating structure (Fig. 3). The chamber, beyond the H 2 -filled 3D printed capillary, hosts longitudinal diagnostics, based on Electro-Optical Sampling, for properly setting bunches inter-distance and duration, permanent magnets to proper match the beam into the plasma and capture it at the exit from plasma, and transverse diagnostics to validate the matching. The vacuum chamber has been designed to have the best vacuum performances, in order to guarantee the ultra-high vacuum level, i.e. 5 10-8 mbar, at the exit of the last accelerating structure. The vacuum tests guarantee the operation with the plasma at 5 Hz satisfying the vacuum requirements.

Figure 3: PWFA chamber installed at the end of the linac. The capillary is filled with hydrogen set at 10 mbar (~100mbar outside the chamber). A valve opens for few ms (~5 ms) letting gas flow inside the capillary. A discharge of ~20kV and 200A ionizes the gas. First tests of the discharge circuit for plasma generation from H2-filled capillaries have been performed in laboratory (Fig. 4). Figure 4: Screenshot of the discharge- driven plasma. Preliminary plasma diagnostics has been set up to retrieve plasma density by measuring the widening of K-alpha line of Hydrogen through Stark effect. The light emitted from the capillary is imaged on the spectrometer slit and its spectrum measured by means of a gated ICCD camera. Preliminary results have shown the capability of the system of retrieving plasma density of the order of 1016 cm-3.

3. List of Conference Talks by LNF Authors in Year 2015 1. R. Pompili, Beam manipulation with Velocity Bunching for PWFA applications, 2nd European Advanced Acceleration Conference, La Biodola - Isola d Elba (2015) 2. A. Biagioni, Opto-acoustic measurements of the plasma density within a gas-filled capillary plasma source, 2nd European Advanced Acceleration Conference, La Biodola - Isola d Elba (2015) 3. S. Romeo, Beam dynamics in resonant plasma wakefield acceleration at SPARC LAB, 2nd European Advanced Acceleration Conference, La Biodola - Isola d Elba (2015) 4. E. Chiadroni, Longitudinal Electron Beam Diagnostics, Beam Dynamics meets Diagnostics, EuCard2, Firenze (2015) 5. F. Ciocci, Segmented undulator operation at the SPARC-FEL test facility, SPIE Optics + Optoelectronics, Prague 2015 6. M. Bellaveglia, The SPARC_LAB femtosecond synchronization for electron and photon pulsed beams, SPIE Optics + Optoelectronics, Prague 2015 7. F. Villa, Seeded FEL with two energy level electron beam distribution at SPARC_LAB, SPIE Optics + Optoelectronics, Prague 2015 4. Publication 1. A. Cianchi et al., Six-dimensional measurements of trains of high brightness electron bunches, PRST AB 18, 082804 (2015). 2. V. Shpakov, Pre-wave zone studies of Coherent Transition and Diffraction Radiation, http://dx.doi.org/10.1016/j.nimb.2015.03.047 (2015)