Ion Acceleration from the Interaction of Ultra-Intense Laser Pulse with a Thin Foil

Similar documents
Scaling Hot-Electron Generation to High-Power, Kilojoule-Class Lasers

Lecture 1. Introduction

Fast proton bunch generation in the interaction of ultraintense laser pulses with high-density plasmas

Laser trigged proton acceleration from ultrathin foil

Proton Radiography of a Laser-Driven Implosion

ULTRA-INTENSE LASER PLASMA INTERACTIONS RELATED TO FAST IGNITOR IN INERTIAL CONFINEMENT FUSION

ION ACCELERATION FROM ULTRA THIN FOILS

UPDATE ON FAST IGNITION EXPERIMENTS AT NOVA PETAWATT

Proton Beam Generated by Multi-Lasers Interaction with Rear-Holed Target

Laser-based proton sources for medical applications

Integrated Modeling of Fast Ignition Experiments

Lecture 6. Ion acceleration in solids. Zoltán Tibai

The Magnetic Recoil Spectrometer (MRSt) for time-resolved measurements of the neutron spectrum at the National Ignition Facility (NIF)

NUCLEAR EMISSIONS FROM TITANIUM HYDRIDE/DEUTERIDE INDUCED BY POWERFUL PICOSECOND LASER BEAM

Integrated simulations of fast ignition of inertial fusion targets

Nuclear Science with High Intensity Lasers

X ray and XUV phase contrast diagnostics for ELI NP

Exploration of the Feasibility of Polar Drive on the LMJ. Lindsay M. Mitchel. Spencerport High School. Spencerport, New York

Ion Acceleration by High Intensity Short Pulse Lasers

Inertial Confinement Fusion DR KATE LANCASTER YORK PLASMA INSTITUTE

Fukuoka, Japan. 23 August National Ignition Facility (NIF) Laboratory for Laser Energetics (OPERA)

Figure 1: The current target chamber and beam diagnostic station for the NDCX-I beamline will be used during commissioning of NDCX-II in 2012

Progress in detailed modelling of low foot and high foot implosion experiments on the National Ignition Facility

Inertial Confinement Fusion Experiments & Modeling

Energetic Ions Generated by Laser Pulses - A Detailed Study on Target Properties

Chapter IX: Nuclear fusion

Advanced Ignition Experiments on OMEGA

Properties of the nucleus. 9.1 Nuclear Physics. Isotopes. Stable Nuclei. Size of the nucleus. Size of the nucleus

Investigations on warm dense plasma with PHELIX facility

The MIT Accelerator for development of ICF diagnostics at OMEGA / OMEGA-EP and the NIF

BEAM PROPAGATION FOR THE LASER INERTIAL CONFINEMENT FUSION-FISSION ENERGY ENGINE. S. C. Wilks, B. I. Cohen, J. F. Latkowski, and E. A.

NUMERICAL MODELING OF LASER-DRIVEN ION ACCELERATION FROM NEAR-CRITICAL GAS TARGETS

Important processes in modeling and optimization of EUV lithography sources

Active manipulation of the spatial energy distribution of laseraccelerated

Properties of the nucleus. 8.2 Nuclear Physics. Isotopes. Stable Nuclei. Size of the nucleus. Size of the nucleus

High Energy Density Physics related to Inertial Fusion with Intense Ion and Laser Beams at GSI and FAIR in Darmstadt

Can laser-driven protons be used as diagnostics in ICF experiments?

Laser Induced Shock Pressure Multiplication in Multi Layer Thin Foil Targets

A laser-driven source to reproduce the space radiation environment. José Manuel Álvarez

What is. Inertial Confinement Fusion?

Monoenergetic proton backlighter for measuring E and B fields and for radiographing implosions and high-energy density plasmas invited

PIC simulations of laser interactions with solid targets

GA A24166 SUPER-INTENSE QUASI-NEUTRAL PROTON BEAMS INTERACTING WITH PLASMA: A NUMERICAL INVESTIGATION

The MIT Nuclear Products Generator for development of ICF diagnostics at Omega / Omega EP and the NIF

Neutron Sources Fall, 2017 Kyoung-Jae Chung Department of Nuclear Engineering Seoul National University

Hydrodynamic instability measurements in DTlayered ICF capsules using the layered-hgr platform

The PETAL+ project X-ray and particle diagnostics for plasma experiments at LMJ - PETAL

Cluster Induced Ignition - A New Approach to Inertial Fusion Energy

Supporting Online Material for

188 L. Jakubowski and M.J. Sadowski temperature. Some examples of the registered X-ray images are shown in Fig.1. Figure 1. X-ray pinhole images from

Laser ion acceleration with low density targets: a new path towards high intensity, high energy ion beams

High-Intensity Laser Interactions with Solid Targets and Implications for Fast-Ignition Experiments on OMEGA EP

Laser-driven proton acceleration from cryogenic hydrogen jets

Monoenergetic Proton Beams from Laser Driven Shocks

An Overview of Laser-Driven Magnetized Liner Inertial Fusion on OMEGA

Spectral analysis of K-shell X-ray emission of magnesium plasma produced by ultrashort high-intensity laser pulse irradiation

Laser-induced ablation: physics and diagnostics of ion emission

Direct-drive fuel-assembly experiments with gas-filled, cone-in-shell, fast-ignitor targets on the OMEGA Laser

Effectiveness and Hydrodynamic Stability of Low-Entropy Laser-Driven Acceleration of Thin Foil.

GA A25842 STUDY OF NON-LTE SPECTRA DEPENDENCE ON TARGET MASS IN SHORT PULSE LASER EXPERIMENTS

Physics of Laser-Plasma Interaction and Shock Ignition of Fusion Reactions

Reducing ion energy spread in hole-boring radiation pressure acceleration by using two-ion-species targets

Shielded Scintillator for Neutron Characterization

An Overview of Laser-Driven Magnetized Liner Inertial Fusion on OMEGA

The Ignition Physics Campaign on NIF: Status and Progress

11/10/2014. Chapter 1: Introduction to Medical Imaging. Projection (Transmission) vs. Emission Imaging. Emission Imaging

LASER ACCELERATION AND LASER COOLING FOR ION BEAMS

Hydrodynamic growth experiments with the 3-D, native-roughness modulations on NIF

Ion acceleration in a gas jet using multi-terawatt CO 2 laser pulses

Atomic ionization of aluminum

Measurements of Radiation Doses Induced by High Intensity Laser between and W/cm 2 onto Solid Targets at LCLS MEC Instrument

Fast Ignition Experimental and Theoretical Researches toward Fast Ignition Realization Experiment (FIREX)

New Ionizing Sources From Lasers to Particles and Applications

Nuclear Fusion with Polarized Fuel

Energetic neutral and negative ion beams accelerated from spray target irradiated with ultra-short, intense laser pulses

D-D NUCLEAR FUSION PROCESSES INDUCED IN POLYEHTYLENE BY TW LASER-GENERATED PLASMA

Two-Dimensional Simulations of Electron Shock Ignition at the Megajoule Scale

Status and Prospect of Laser Fusion Research at ILE Osaka University

Proton acceleration in thin foils with micro-structured surface

Scientific Case for Ultra-intense Laser-Matter Interaction Physics in Solid-density Plasma

Optimization of laser-produced plasma light sources for EUV lithography

Towards 100 MeV proton generation using ultrathin targets irradiated with petawatt laser pulses

Calibration and applications of modern track detectors CR-39/PM-355 in nuclear physics and high temperature plasma experiments

Robust energy enhancement of ultra-short pulse laser accelerated protons from reduced mass targets

(2016) ISSN X,

Measurements of Radiation Doses Induced by High Intensity Laser between and W/cm 2 onto Solid Targets in LCLS MEC Instrument

Extreme Light Infrastructure - Nuclear Physics ELI - NP

Six Ion Gun Fusion Experiment (SIGFE) Findings and Future Work

Laser heating of noble gas droplet sprays: EUV source efficiency considerations

Observations of the collapse of asymmetrically driven convergent shocks. 26 June 2009

Hot electrons in the interaction of femtosecond laser pulses with foil targets at a moderate laser intensity

Experiments on Dynamic Overpressure Stabilization of Ablative Richtmyer Meshkov Growth in ICF Targets on OMEGA

Effect of laser light polarization on generation of relativistic ion beams driven by an ultraintense laser

References and Figures from: - Basdevant, Fundamentals in Nuclear Physics

Ignition Regime and Burn Dynamics of D T-Seeded D 3 He Fuel for Fast Ignition Inertial Confinement Fusion

Inertial Confinement Fusion

Development of a WDM platform for chargedparticle stopping experiments

Direct-Drive, High-Convergence-Ratio Implosion Studies on the OMEGA Laser System

Development of a table top TW laser accelerator for medical imaging isotope production

Lecture 7. Ion acceleration in clusters. Zoltán Tibai

Transcription:

Ion Acceleration from the Interaction of Ultra-Intense Laser Pulse with a Thin Foil Matthew Allen Department of Nuclear Engineering UC Berkeley mallen@nuc.berkeley.edu March 15, 2004 8th Nuclear Energy Symposium Tokai University, Tokyo

Ion Acceleration Has Been Observed Experimentally R.A. Snavely et al., Phys. Rev. Lett. 84, 2945 (2000); E.L. Clark et al., Phys. Rev. Lett. 84, 670 (2000); A. Maksimchuk et al., Phys. Rev. Lett. 84, 4108 (2000). 8th Nuclear Energy Symposium Tokai University, Tokyo 1

Well Characterized Laser-Ion Beams will Have Many Applications Warm Dense Matter Isotope Production Proton Radiography Neutron Source At I > 10 19 W/cm 2, ions are accelerated to MeV-range energies. 8th Nuclear Energy Symposium Tokai University, Tokyo 2

Three Principle Mechanisms of Ion Acceleration I. Thermal Expansion Ions reach average plasma temperature E ion kt Ions reach energies of thermal sound speed. E ion < 1 MeV II. Ponderomotive Potential Maximum energy approx. laser ponderomotive potential ( Up = 1 + Iλ 2 ) 1.3 10 18 1 mc 2 E ion = 1 3 MeV III. Target Normal Sheath Acceleration Electrostatic sheath is formed by hot electrons. E T hot eλo Surface atoms are field ionized and accelerated E ion > 10 MeV S. Hatchett et al., Phys. Plasmas 7, 2076 (2000). S. C. Wilks et al. Phys. Plasmas 8, 542 (2001). 8th Nuclear Energy Symposium Tokai University, Tokyo 3

Which is the dominant acceleration mechanism? Where do the energetic protons originate? Front Surface Ponderomotive Acceleration Back Surface Target Normal Sheath Acceleration Previous experiments have studied the mechanism by removing the contamination layer. Resistive Heating 1 removes contamination from all surfaces Laser Ablation 2 dramatically perturbs back surface Ion Sputtering can remove contamination from one surface at a time. 1 M. Hegelich et al., 2 A. Mackinnon et al., 8th Nuclear Energy Symposium Tokai University, Tokyo 4

Description of Ion Sputter Gun 3-cm Argon Ion Source Beam Voltage 500 V Beam Current 10 ma Etch Rate 170 Å/min 8th Nuclear Energy Symposium Tokai University, Tokyo 5

Experimental Setup of Ion Sputter Gun Ion gun (in target chamber) positioned to etch back surface of target. JanUSP Laser: E L = 10 J, τ = 100 fs I > 10 20 W/cm 2 Sputter gun can be positioned to etch either the front or back surface of the laser target. 8th Nuclear Energy Symposium Tokai University, Tokyo 6

Photographs of Experimental Setup Ion Gun Off Ion Gun On Ion sputter gun shown in the JanUSP target chamber. Source is positioned to etch back surface of the laser target. Radiation is visible when source is on. 8th Nuclear Energy Symposium Tokai University, Tokyo 7

Proton Beam from 15-µm Thick Au Targets Etching back surface of the target has dramatic effect on proton beam. 8th Nuclear Energy Symposium Tokai University, Tokyo 8

Quantitative Analysis of Au Target Shots At E > 5 MeV, the proton beam can be fit to a Maxwellian distribution, Conversion into Deposited Proton Energy (%) No etching ( ) and etching only the front surface ( ) produced proton beam with 1% of laser energy. Etching back surface ( ) produced no signal above background levels. 8th Nuclear Energy Symposium Tokai University, Tokyo 9

Particle-In-Cell Simulations Agree Well With Experimental Results Back surface protons obtain E max = 13 MeV. Front surface protons obtain E max = 4 MeV. Heavy (gold) ions obtain E max = tens of MeV. Experiment and theory support evidence for back surface acceleration mechanism. 8th Nuclear Energy Symposium Tokai University, Tokyo 10

APPLICATIONS 8th Nuclear Energy Symposium Tokai University, Tokyo 11

Ion Beam Can Be Ballistically Focused Heating at Constant Volume high energy density (> 10 5 J/g) picosecond (10 12 ) time scale warm dense plasma 23 ev Streak camera images space- and time-resolved thermal emission at 570 nm with an 800 µm spatial region and 1 ns window. New opportunities in high energy-density physics and fusion energy research P.K. Patel et al., Phys. Rev. Lett. 91, 125004 (2003). 8th Nuclear Energy Symposium Tokai University, Tokyo 12

Medical Isotope Production Positron Emission Tomography PET imaging is unique in that it shows the chemical function of organs and tissue, while other techniques (X-ray, CT, MRI) show only structure. Clinical Applications of PET Oncology Cardiology Neurology Academic Applications of PET Cognitive Processes Organ Function Proton Activated Isotopes Isotope Half-Life 15 O 2 min. 13 N 10 min. 11 C 20 min. 18 F 110 min. 8th Nuclear Energy Symposium Tokai University, Tokyo 13

High Resolution Proton Radiography Radiograph Characteristics 2 3 µm resolution picosecond (10 12 ) time scale diagnose ICF capsules diagnose plasma E-fields Closeup of Radiograph J. A. Cobble et al., J. Appl. Phys. 92, 1775 (2002). 8th Nuclear Energy Symposium Tokai University, Tokyo 14

Table-Top Short-Pulse Neutron Source Deuterons are accelerated into tritium target Short pulses (< 1 ps) of 14-MeV fusion neutrons Time resolved neutron damage studies 8th Nuclear Energy Symposium Tokai University, Tokyo 15

Fast Ignitor Inertial Confinement Fusion Proton fast ignition is well suited for heavy-ion fusion hohlraum designs. Ion-driven fast ignition circumvents difficulties of ion acceleration, pulse compression, focusing and transport M. Roth et al., Phys. Rev. Lett. 86, 436 (2001). 8th Nuclear Energy Symposium Tokai University, Tokyo 16

Conclusion Laser-Acceleration of Ions Has Been Observed At I > 10 19 W/cm 2 Ions Accelerated to E > 10 MeV Many Institutions Currently Studying Laser-Ion Acceleration Experiments and Simulations Protons Originate from Back Surface of Laser Target (TNSA model) Beam Can Be Ballistically Focused by Target Geometry Potential Applications Include Warm Dense Matter Isotope Production Proton Radiography Table-Top Neutron Source 8th Nuclear Energy Symposium Tokai University, Tokyo 17