FEBIAD ion source development efficiency improvement

Slides:



Advertisements
Similar presentations
(not visible on the picture)
Advertisements

Drew Rotunno Mentor: Dr. Itzik Ben-Itzhak, Bethany Joachim Bethany Joachim.
ISOLDE WS 2007 Results with ISCOOL a new Radio Frequency Quadrupole Cooler and Buncher at ISOLDE P. Delahaye, H. Frånberg, AB-OP-PSB, ISCOOL, COLLAPS,
W. Udo Schröder, 2004 Instrumentation 1. W. Udo Schröder, 2004 Instrumentation 2 Probes for Nuclear Processes To “see” an object, the wavelength of the.
Quartz line ISOL target prototype: suppression factors obtained online – E. Bouquerel – 04/09/07 - CERN Quartz line ISOL target prototype: suppression.
PIII for Hydrogen Storage
Electron shell model. different electrons on different atoms have different energies.
ISOLDE Yield Database Tania Melo Mendonca EN-STI-RBS.
Yoro TALL Santiago de Compostela (Spain) June 7 – 10, Second IP EUROTRANS Internal Training Course on Nuclear Data for Transmutation: status, needs.
1 Introduction to Plasma Immersion Ion Implantation Technologies Emmanuel Wirth.
Mass Analyzer of SuperHeavy Atoms Some recent results 2012 Student Practice in JINR Fields of Research 9.oct.2012 I. Sivacekflerovlab.jinr.ru.
Technical studies for the HIE- ISOLDE Frontend upgrade Jacobo Montaño Marie Curie Fellow; CATHI Project * The research project has been supported by a.
ISOLDE contribution to task 11 8.Prediction of secondary beam intensities Pierre Delahaye for the ISOLDE collaboration EURISOL DS Task 11 kick-off meeting,
Surface and volume production of negative ions in a low-pressure plasma E. Stoffels, W.W. Stoffels, V.M. Kroutilina*, H.-E. Wagner* and J. Meichsner*,
Physics of fusion power Lecture 2: Lawson criterion / some plasma physics.
Lecture 11.0 Etching. Etching Patterned –Material Selectivity is Important!! Un-patterned.
INRNE BAS NEC'2007, Varna, Bulgaria Positron annihilation versus electron cloud Angel H. Angelov Institute for Nuclear Research and Nuclear Energy.
Atomic Model. Matter Anything that has mass and volume –Mass the amount of particles making up a substance –Volume is the amount of space taken up by.
Chad Orzel Union College Physics Radioactive Background Evaluation by Atom Counting C. Orzel Union College Dept. of Physics and Astronomy D. N. McKinsey.
Electron interactions with CO 2 Bob Merlino Department of Physics and Astronomy The University of Iowa Iowa City, IA U. S. Department of Energy National.
TRIGGERING EXCIMER LASERS BY PHOTOIONIZATION FROM A CORONA DISCHARGE* Zhongmin Xiong and Mark J. Kushner University of Michigan Ann Arbor, MI USA.
Welcome to the CHARMS See – Tea Sunday, October 11, 2015 Release of Light Alkalis (Li, Na, K) From ISOLDE Targets Strahinja Lukić,
Radioactive ion beam facilities How does they work ? 2012 Student Practice in JINR Fields of Research 9.oct.2012 I. Sivacekflerovlab.jinr.ru.
1.2 The mass of the atom With the methods of chemistry: Dalton’s law of constant and multiple proportions The atomic weights are approximately whole-number.
Buffer Gas Cooling of atomic and molecular beams Wenhan Zhu Princeton University 11/06/2007.
Ion Heating and Cooling in an EBIT or EBIS Ross Marrs Lawrence Livermore National Laboratory LLNL-PRES HIE-EBIS Workshop CERN October 2012.
International Symposium on Heavy Ion Inertial Fusion June 2004 Plasma Physics Laboratory, Princeton University “Stopping.
VUV-diagnostics of inelastic collision processes in low temperature hydrogen plasmas J. Komppula & JYFL ion source group University of Jyväskylä Department.
Sputter deposition.
The REXTRAP Penning Trap Pierre Delahaye, CERN/ISOLDE Friedhelm Ames, Pierre Delahaye, Fredrik Wenander and the REXISOLDE collaboration TAS workshop, LPC.
24 January 2001J. Lettry1 ISOLDE Introduction –PSB-beam, Targets –Ion-sources Facility performance –Front-ends and robots –Target production –Safety.
Ionization Detectors Basic operation
Radioactive ion beam production at other facilities
Mats Lindroos Future R&D: beta-beam Mats Lindroos.
CHAPTER 1 QUANTITATIVE CHEMISTRY LOOK AT EACH LEARNING GOAL AND WATCH THE TUTORIAL VIDEOS FOR THE GOALS YOU NEED WORK ON.
I. Basic Chemistry. A. Elements and Atoms 1. Elements- Substance which cannot be broken down into a simpler substance a) 96% of all life is Carbon, Hydrogen,
A. Kelić, S. Lukić, M. V. Ricciardi, K.-H. Schmidt GSI, Darmstadt, Germany and CHARMS Measurements and simulations of projectile and fission fragments.
An Estimation of Critical Electron Density at Just Starting Breakdown in Gases Mase. H Professor Emeritus of Ibaraki University.
Large Area Plasma Processing System (LAPPS) R. F. Fernsler, W. M. Manheimer, R. A. Meger, D. P. Murphy, D. Leonhardt, R. E. Pechacek, S. G. Walton and.
LIST status and outlook Sven Richter for the LIST-, RILIS- and Target-Collaborations 21 st of August 2013.
Welcome to the CHARMS See – Tea Saturday, March 05, 2016 Comparison of ISOLDE yields with calculated in- target production rates Strahinja Lukić,
Nuclear structure research at ISOLTRAP 17th of November 2008 Dennis Neidherr University of Mainz Outline:  Motivation for our measurements  Xe/Rn results.
NATIONAL INSTITUTE OF NUCLEAR PHYSICS Legnaro National Laboratories Numerical simulation strategy for the SPES FEBIAD ion source INFN – CISAS collaboration.
H. Koivisto, EMILIE workshop, rd March 2016, GANIL, France Research of CB ECRIS plasma with the aid of injected 1+ beam H Koivisto 1, O Tarvainen.
High Power Target Studies at CERN-ISOLDE Tania M. Mendonca, Melanie Delonca, Veronique Ghetta, Etam Noah, Thierry Stora.
Saturn Magnetosphere Plasma Model J. Yoshii, D. Shemansky, X. Liu SET-PSSD 06/26/11.
Comprehensive investigation of the decay losses in the ISOL extraction method KP2 Seminar, Strahinja Lukić.
SPES Target Group Data…… INFN-CISAS-CNR collaboration The Ablation Ion Source for refractory metal ion beams A preliminary design.
January 30, 2007 CERN Resonant laser ion sources By V. Fedosseev.
DC Sputtering Disadvantage #1 Low secondary electron yield
Lecture at the MEDICIS-PROMED Summer School
Studies for Developing the MW-station Ion Source
Jari Koskinen, Sami Franssila
(Thermal Evaporation)
Jari Koskinen, Sami Franssila
Study on Monatomic Fraction Improvement with Alumina Layer on Metal Electrode in Hydrogen Plasma Source Bong-Ki Jung, Kyung-Jae Chung, Jeong-Jeung Dang,
at diagnostic position
DOE Plasma Science Center Control of Plasma Kinetics
SMI-06 Workshop, Groningen,
A “standard” ISOLDE target: ThO2-184, n-rich Cu
Future R&D: beta-beam Mats Lindroos Mats Lindroos.
Nonmetals- noble Gases
Thin Target effusion calculations using GEANT4
Physics of fusion power
Feasibility Study of the Polarized 6Li ion Source
INTC September 2002 ISOLDE Mats Lindroos Mats Lindroos.
Noble gases TRENDS.
1.6 Glow Discharges and Plasma
Feasibility Study of the Polarized 6Li ion Source
The Kinetic-Molecular Theory
Presentation transcript:

FEBIAD ion source development efficiency improvement at ISOLDE: efficiency improvement for all the elements L.Penescu, R.Catherall, J.Lettry, T.Stora CERN, AB-ATB-IF (ISOLDE) ISOLDE Workshop, 17-19 November 2008

Ionization efficiency improvement at ISOLDE FEBIAD Ion source Ionization Efficiency He Ne Ar Kr Xe Rn* Standard MK7 [1] 0.14 0.36 2.0 4.3 11 - 1st proto (#380) 0.37 7.8 19 2nd proto (#317, #385) 1.4 6.7 26 38 47 62 Multiplying factor 10 18.6 13 8.8 4.3 - Yields 72Kr 73Kr Measured (at/µC) 1.1e4 1.2e6 Database (at/µC) 2.0e3 7.4e4 #380 Nb (HRS) Record yields for Krypton: #385 UCx (HRS) Discovery of 229Rn. [1] U.C. Bergmann et al, NIM B204 (2003) 204 Liviu Penescu ISOLDE Workshop, 17-19 November 2008

Efficiency of the ISOL process Leaks Release loss Decay loss Condensation Neutrals Sidebands Multiply charged Transfer line Ion source Extraction Target oven Plasma Extracted ion beam ~nA for Surface ~A for FEBIAD ~mA for ECR  Nuclear reaction - cross section  Effusion  Ionization  Beam quality  Diffusion  Gas pumping Liviu Penescu ISOLDE Workshop, 17-19 November 2008

Elements produced at ISOLDE FEBIAD ion sources 1+ Ionization Efficiency Dependent on:  Mass  Ionization potential  Volatility  …  Ionization potential: ANY element  Volatility: elements with Ha < ~6eV Elements produced at ISOLDE Liviu Penescu ISOLDE Workshop, 17-19 November 2008

The arc discharge plasma Electron impact ionization Charge exchange Recombination Neutral effusion Thermionic emission Surface ionization Chemical reactions Transfer line 16mm Cathode Anode 22mm Liviu Penescu ISOLDE Workshop, 17-19 November 2008

Theoretical models for FEBIAD ionization  Best approximation: empirical equation [2] Model parameters (FEBIAD): kTe = 3.029 eV; Ti = 2273 K; 4lD0/A0 = 5.39105 cm/s Implications… Fitted results: FEBIAD (Kirchner) and EBGP (Nitschke) sources Where: l = average path length for a particle in the plasma; D0 = constant (cm2/s); Sout = emission area of the source; Ti = ion temperature; Te = electron temperature; Ip = ionization potential; le = number of electrons in the valence shell of the atom with a given Ip; Mi = mass of the species. Not useful for: Deducing: response time; emittance; collective behavior (=>selectivity) Comprehension of IS internal parameters: [2] G.D.Alton, NIM A382 (1996) 207 Liviu Penescu ISOLDE Workshop, 17-19 November 2008

FEBIAD – effect of operational parameters Density Energy Confinement Extraction Temperature Magnetic field Anodes potentials Operating pressure ELECTRONS IONS Liviu Penescu ISOLDE Workshop, 17-19 November 2008

FEBIAD - a parameter-oriented model Inferred from experimental study; Introduced in [3]. Model frame Equivalent with: No plasma confinement; Mainly direct electron beam ionization; No ion heating. Buffer gas not required for ionization; Emittance defined mainly by the extraction geometry;  Fast ionization. T = cathode temperature = gas & ion temperature; A, W = cathode parameters (Richardson constant & work function); Eelec = ionizing electrons energy; Eioniz, le, Mi = element parameters (ionization energy; available electrons; mass) Vsource = source volume; Sout = emission area of the source. [3] L.Penescu et al, NIM B 266, 4415 (2008) Liviu Penescu ISOLDE Workshop, 17-19 November 2008

FEBIAD prototypes Liviu Penescu ISOLDE Workshop, 17-19 November 2008 Improvement: Extraction factor, fextr + 2nd Prototype (#385 UCx): reduction of wall losses 1st Prototype (#380 Nb): optimization of extracting field MK7 and MK5 (“cold” and “hot” plasma) Only MK7 (“cold plasma”) => Only noble gases => ALL elements Liviu Penescu ISOLDE Workshop, 17-19 November 2008

Expected element dependence VOLATILE Valid for isotopes STABLE Ion source response time: ionization extraction pumping decay sticking Pumping effect textr Ar 1900C f=0.25 tioniz  Ion source response time improved  Ion source response time < target + transfer line resp. time  No isotope lifetime limitation from the ion source Liviu Penescu ISOLDE Workshop, 17-19 November 2008

Applicability Improvement valid for: ALL types of transfer line (hot, cooled, quartz); ALL target materials; Atomic ionization AND molecular sidebands. Effect on the MK7 efficiencies (and RIB yields): Element He Ne Ar Kr Xe Multiplying factor 10 18.6 13 8.8 4.3 Effect on the MK5 efficiencies (and RIB yields): Element He Ne Ar Kr Xe Multiplying factor 3.8 4.0 3.3 3.5 2.5 Expected to apply for ALL elements! Liviu Penescu ISOLDE Workshop, 17-19 November 2008

Thank you for your attention! Liviu.Penescu@cern.ch