Materials Research in the LERF User Labs

Slides:



Advertisements
Similar presentations
Pulsed laser deposition of oxide epitaxial thin films
Advertisements

Orientation Objectives Fundamentals of Laser Operation –film: laser classification system Overview of ANSI Standard for the Safe Use of Lasers Biological.
Introduction to Ingot Niobium Andrew Hutton SSTIN10 Symposium Jefferson Lab Sept 22-24, 2010.
Laser-Assisted Direct Imprint (LADI) Technology S. Y. Chou, C. Keimel, and J. Gu, Ultrafast and direct imprint of nanostructures in silicon, Nature, 417.
Nitride Superlattice Thin Films for Superhard Coatings Ramou Akin-Cole MRSEC Program 2004 Advisor: Paul Salvador Graduate Student: Nitin Patel.
J EFFERSON L AB – A N I NTRODUCTION Hugh Montgomery; March 5, 2012.
Experience with Bunch Shape Monitors at SNS A. Aleksandrov Spallation Neutron Source, Oak Ridge, USA.
MATERIALS AND TECHNOLOGIES FOR FORMING TRANSPARENT- CONDUCING-OXIDE FOR SOLAR CELLS LI Xiang.
Pulsed Laser Deposition (PLD) Anne Reilly College of William and Mary Department of Physics.
Femtosecond Laser Micromachining of BioMEMS BioMEMS Lab Mechanical and Aerospace Engineering University of Texas Arlington.
Research Opportunities in Radiation-Induced Chemical Dynamics Scientific Opportunities for Studying Laser Excited Dynamics at the LCLS: David Bartels Notre.
Structural and optical properties of pulsed laser deposited V 2 O 5 thin f ilms Apr 20 th, 2009 Thin film class Paper reading session Presentation by Jiajia.
ECR Deposition of Niobium 10/09/2006 Thin Films and new ideas for pushing the limits of RF superconductivity 1 ECR Deposition of Niobium ECR plasma principle.
Thin superconducting niobium- coatings for RF accelerator cavities J. LANGNER, M.J. SADOWSKI, R. MIROWSKI, P. STRZYŻEWSKI AND J. WITKOWSKI The Andrzej.
PEALD/CVD for Superconducting RF cavities
W. Wuensch, rf development meeting Considerations on running normal conducting cavities cold.
Superconducting Cavities Development at Fermi National Accelerator Laboratory Dmitri Denisov DIET Federation Roundtable, Washington DC, April
Shekhar Mishra, Fermilab Mark J. Oreglia, Univ. of Chicago
Thomas Jefferson National Accelerator Facility Secretary of Technology Page 1 Jefferson Lab Overview Deb Magaldi Public Affairs
Athmospheric Surface Treatments of Niobium A. Camacho*^, A.A. Rossi* and V. Palmieri*^, * INFN – Legnaro National Laboratories ^ University of Padua.
Study of MgB 2 Thin Films on Nb by Pulse Laser Deposition S.Mitsunobu, S.Inagaki, H.Nakanishi, M.Wake and M.Fukutomi* KEK,NIMR*
Summary SRF project at Argonne National Laboratory (started 11/09) Investigators: Th. Proslier, J. Klug, N. Becker, M. Kharitonov, H. Claus, J.Norem, M.
Summary of issues. RF-Gun cavity – Disk and washer (DAW) : very fast RF ageing, 2 MeV is not enough. – Quasi travelling wave side couple structure : Lower.
RET Optics Research Workshop Workshop #2 Solar Energy Solar Cells and Solar Ovens Dr. Mike Nofziger Professor College of Optical Sciences University of.
Nanotechnology The biggest science and engineering initiative since the Apollo program.
Fiber Laser for ERL Zach Ulibarri Mentor: Zhi Zhao.
M. Zamfirescu, M. Ulmeanu, F. Jipa, O. Cretu, A. Moldovan, G. Epurescu, M. Dinescu, R. Dabu National Institute for Laser Plasma and Radiation Physics,
High Current Electron Source for Cooling Jefferson Lab Internal MEIC Accelerator Design Review January 17, 2014 Riad Suleiman.
Structure of the task 12.2 Claire Antoine Eucard2 WP12 DESY
Study of Secondary Emission Enhanced Photoinjector Xiangyun Chang 1, Ilan Ben-Zvi 1,2, Andrew Burrill 1, Peter D. Johnson 2 Jörg Kewisch 1 Triveni S. Rao.
Reminders Quiz#2 and meet Alissa and Mine on Wednesday –Quiz covers Bonding, 0-D, 1-D, 2-D, Lab #2 –Multiple choice, short answer, long answer (graphical.
LITHOGRAPHY IN THE TOP-DOWN PROCESS - NEW CONCEPTS
High Q R&D at JLab G. Ciovati, P. Dhakal, R. Geng, P. Kneisel, G. Myneni TTC Topical Meeting on CW SRF Cornell Univ., June 12 th -14 th, 2013.
EUV-initiated surface changes in polymers
R.L. Geng, 5/27-31,2013 ECFA LC2013, DESY 1 Update on Raising Q0 at Ultra-High Gradient via Large-Grain Niobium Material Rongli Geng Jefferson Lab ECFA.
Passivation of HPGe Detectors at LNL-INFN Speaker: Gianluigi Maggioni Materials & Detectors Laboratory (LNL-INFN) Scientific Manager: Prof. Gianantonio.
Workshop on Women in Science and Engineering Latifa Elouadrhiri Jefferson Lab November 16, 2009.
Lithography in the Top Down Method New Concepts Lithography In the Top-Down Process New Concepts Learning Objectives –To identify issues in current photolithography.
Frank Batten College of Engineering & Technology Old Dominion University: Pulsed Laser Deposition of Niobium Nitride Thin Films APPLIED.
MPRI Centralised Laboratories Gerrard Peters School of Physics 1.
David Fritz LUSI DOE Review July 23-24, 2007 Damage Considerations 1 Damage Considerations David Fritz FEL Source Propagation.
El-Mul Technologies Ltd – Confidential & Proprietary El-Mul Technologies El-Mul Technologies Ltd – Confidential & Proprietary Prof. Eli Cheifetz, Chairman.
Nanotechnology Ninad Mehendale.
Operated by the Southeastern Universities Research Association for the U.S. Dept. of Energy Thomas Jefferson National Accelerator Facility FEL Power Achieved.
Genesis of topography by buffered chemical polishing of niobium Liang Zhao, Taina Matos, Tina Wang, Josh Spradlin, Charles E. Reece, Michael J. Kelley.
SRF COLLABORATION MEETING MAY.2016 ESS MEDIUM BETA CAVITY MANUFACTURING CEA Saclay/ESS ECCTD WU Cavités | Enrico Cenni.
THE ANDRZEJ SOŁTAN INSTITUTE FOR NUCLEAR STUDIES INSTYTUT PROBLEMÓW JADROWYCH im. Andrzeja Sołtana
Athmospheric Surface Treatments for improving 6Ghz Niobium cavities V. Palmieri, A. Rossi, K. Atroshchenko, D. Rizetto, A. Camacho, S.Yu. Stark * INFN.
Mg Films Grown by Pulsed Laser Deposition as Photocathodes: QE and surface adsorbates L. Cultrera INFN – National Laboratories of Frascati.
Anne-Marie VALENTE-FELICIANO On behalf of the HEPTHF Collaboration.
International Conference on Science and Technology for FAIR in Europe 2014 APPA Cave Instrumentation for Plasma Physics Vincent Bagnoud, GSI and Helmholtz.
Developing the Collaboration P McIntosh STFC Daresbury Laboratory.
Plasma Processing of Niobium SRF Cavities Janardan Upadhyay Department of Physics Center for Accelerator Sciences Old Dominion University Norfolk, Virginia.
Thomas Jefferson National Accelerator Facility Operated by the Southeastern Universities Research Association for the U.S. Department of Energy Jefferson.
PURIFICATION OF 6 GHZ RESONATORS AT EXTREMELY HIGH TEMPERATURES AT ATMOSPHERIC PRESSURE A.A. Rossi, S. Stark, R. K. Thakur, N. Visonà and V. Palmieri ISTITUTO.
Free Electron Laser Studies
Pulsed Energetic Condensation of Nb Thin Film Cavities at JLab
New Cavity Techniques and Future Prospects
JLab infusion and LG flux expulsion update
Peng Sha Institute of High Energy Physics, CAS
High Q via N infusion R&D at Jefferson Lab
Materials, Advanced Accelerator Science & Cryogenics Division
Development and characterisation of laser-patterned polymer substrates for controlling cell growth Michael Irving.
Free Electron Lasers (FEL’s)
Four States of Matter Chapter 4 – Section 1.
ATF 120 Hz Photocathode RF Gun Injection System Design Studies
Summary for the Sources working group
SRF Surface Studies and the High Field Q-slope Mystery
Studies of Emittance & Lifetime
Jim Clarke ASTeC Daresbury Laboratory March 2006
Presentation transcript:

Materials Research in the LERF User Labs Michael J. Kelley College of William & Mary and Jefferson Lab mkelley@jlab.org

Materials R&D Lab Concept and Mission Precise energy delivery for materials modifications - Wavelength, location, fluence, time, etc. Unique light sources, some deployable - FEL (IR, UV), ps lasers, ns lasers, UV lamps Application devices - Laser micromachining system, Pulsed laser deposition system What has been/could be done - Polymer surface chemical modification – synthetics, renewables - Laser polishing, Laser nitriding, PLD for organics

Sharp surface roughness enhances magnetic field concentration, promoting energy loss Chen Xu dissertation

Light BCP AFM PSD Liang Zhao dissertation

Why Nitride the Niobium Surface? Presently Nb SRF cavities operate near 1.9 K, well (and expensively) below the 4.2 K atmospheric boiling point of liquid He. Forming the active interior surface from  NbN (Tc  17 K) vs the present Niobium (Tc  9.2 K), would reduce cryogenics cost and simplify the engineering design. Enable 4.2 K operation Conventional furnace nitriding does not produce superconducting delta phase NbN.

Nitriding Experiment Laser parameters: Wavelength : 1064 nm Repetition rate : 15 – 30 KHz Pulse width : 15 ns Fluence : 1.1 – 4 J/cm2 Treatment parameters: N2 pressure : 500 – 625 torr Target rotation : 9 rpm No. of pulses overlap/area on each circle : 40 - 200 Raja Singaravelu dissertation

Laser heating : Simulation Raja Singaravelu dissertation Surface temperature profile for niobium for various laser fluences (for single pulse – pulse width = 15 ns)

X-Ray Diffraction Raja Singaravelu dissertation

Polymer PLD experiment Cyclic Olefin Copolymer - COC Uses: High transparency and gloss High heat resistance upto 1780 C Resists acids and alkalis Excellent moisture and aroma barrier Excellent biocompatibility n,m = repeat units R1, R2, R3 = -CnH2n+1 Free electron laser parameters: 60Hz, 250 us, 4MHz, 3.4 m Raja Singaravelu dissertation

that use our capabilities We seek opportunities for collaborations that use our capabilities mkelley@jlab.org

Special thanks to the students who did the work Lopamudra Das – W&M Raja Singaravelu – ODU Liang Zhao – W&M Zhengmao Zhu – W&M