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Energetic Condensation Growth of Nb films for SRF Accelerators  * ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Outline ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Alameda Applied Sciences Corporation ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],CED ™  coating inside of furnace tubes Anti-coking coating on furnace tube Benefit: extended interval between de-cokings 10 cm  Uncoated Coated Cathodic Arc Coatings (CED TM ) Superconducting Thin Films RRR ~300, T c  =9.27K Diamond Radiation Detectors UV and soft x-ray ≤  15 keV  20W / 1kg/ 100mN / 2000s Micro-propulsion Pulsed Neutron Source 2.5 and 14 MeV neutrons DPF-2
Motivation ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Our thin film superconductor development is aimed at these broad goals
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],The AASC-JLab/NSU collaboration
[object Object],Why do we collaborate? A  great American Patriot (Thomas Paine) said during the American Revolution: ( this is for Enzo to use in the future ) Men, we must hang together, or assuredly, we will all hang separately Funding for thin-film R&D hangs by a thin thread; so let’s hang together!
Approach of the AASC-JLab/NSU collaboration ,[object Object],[object Object],[object Object],[object Object],[object Object],CED TM FCAD
Coating Facilities available at AASC
Three different Coaters at AASC Coaxial Energetic Deposition (CED TM ) Cathodic Arc Deposition (CAD) Filtered Cathodic Arc Deposition (FCAD)
CED TM : Helical arc rotates in a weak B-field CED TM  may be used to coat full cavities in the future B Field Trigger Mo Anode Mesh Nb  Cathode
CED TM : Grows a monolayer (≈4Å) of Nb in ≈2ms
Energetic Deposition is different from sputtering and PVD Comparison of Stress build-up in low energy deposition, energetic condensation, and  energetic condensation plus high voltage bias  Relief of compressive stress by pulsed ion impact [*]  [*] M. M. Bilek, R N. Tarrant, D. R. McKenzie, S H. N. Lim, and D G. McCulloch “Control of Stress and Microstructure in Cathodic Arc Deposited Films”  IEEE TRANSACTIONS ON PLASMA SCIENCE , VOL. 31, NO. 5, OCTOBER 2003 (A. Anders) (A. Bendavid, CSIRO) (M.M. Bilek) Nb
CAD: Allows variation of growth rate from 0.1-3 monolayers/pulse ,[object Object],[object Object],[object Object],[object Object],Cathodic Arc Deposition (CAD)
CAD Coater for compound films ,[object Object]
Recent results from Nb thin-films coated using the CED TM  coater
[object Object],[object Object],[object Object],[object Object],[object Object],Our CED TM  coater has shown RRR>300 in 1.5µm thick Nb films! This could be a major breakthrough for thin film SRF See next talk by Anne-Marie on RRR of 223 in biased ECR films
RRR of Nb thin films on a-sapphire  ,[object Object]
MgO gives the  highest RRR ever measured  in Nb thin films ,[object Object],An APL is in preparation on these results Next steps are RRR vs. film thickness and RRR for biased coatings
RRR as measured is an average over the film thickness (recall Larry’s talk on Monday?) RRR of uppermost layer (London depth) is higher than <RRR> Substrate bias improves RRR further ( see Anne-Marie’s talk to follow )
Why is our RRR so high relative to other sources?  ,[object Object]
XRD and EBSD measurements show hetero-epitaxial growth of single crystal Nb on a-sapphire and on MgO
Nb on a-sapphire thin films: crystal structure Hetero-epitaxial, single crystal growth is correlated with higher RRR RRR=10, 150/150 RRR=31, 300/300 RRR=155, 700/500 Al 2 O 3 110 Nb Al 2 O 3 110 Nb Al 2 O 3 110 Nb Polycrystal Polycrystal Monocrystal ,[object Object]
Nb on MgO thin films: crystal structure ,[object Object],Nb crystal planes shift from (110) to  (100)  as temperature (& RRR) increase:  An APL is in preparation on this fascinating trend (Kang Seo et al) RRR=7, 150/150 RRR=181, 500/500 RRR=316, 700/700 200 Nb 110 Nb 200 110 110 200 MgO 200 MgO 110 Nb 200 MgO Polycrystal Monocrystal Monocrystal
Nb on MgO: temp. driven transition in crystal orientation  ,[object Object],[object Object],EBSD shows 110 to 100 transition (Pole figure captures the 200 plane):  An APL is in preparation on this (Kang Seo et al) Nb (100) RRR = 333, 600/500  Nb (110) Nb (100) RRR = 196, 500/500  100µm 1mm 1mm
Nb on MgO: macro-particles show same orientation as flat surface ,[object Object],[object Object],RRR = 316, 700/700  Nb (100) Macroparticle 35µm
Nb thin films grown on c-sapphire and on Borosilicate ,[object Object]
Nb thin films on c-sapphire: crystal structure ,[object Object],Textured structure (twins) disappears at higher temperature (RRR) RRR=16, 700/150 RRR=43, 700/700 200 110
XRD measurements show  polycrystalline  Nb with  more coherent  texture grown on amorphous borosilicate This opens the possibility of Nb superconductors on cast Al cavities of the future Nb crystals grown on  amorphous  borosilicate
Nb thin films on borosilicate: crystal structure ,[object Object],Nb crystal growth (low texture) despite amorphous substrate; however, EBSD shows grain size is too small, so need to improve this (biasing?) RRR=10, 150/150 RRR=31, 700/500 Intensity increases (higher crystallinity) (110) Nb (220) Nb (211) Nb (110) Nb (220) Nb (110) Phi (rotation) Psi (tilt) (110) plane (211) plane 150/150C
SIC measurements at JLab Rs vs. T for thin film Nb on Cu sample TF-AASC-CED-Nb-Cu-103; EP, annealed at 750 C, then EP again
The AASC/JLab/NSU team hopes to continue our methodical investigation of Nb, Nb 3 Sn, MoRe and other thin film SRF candidates, culminating in high field cavity tests  after better understanding
T c  vs. substrate heating conditions: MgO

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Krishnan - Energetic Condensation Growth of Nb films for SRF Accelerators

  • 1.
  • 2.
  • 3.
  • 4.
  • 5.
  • 6.
  • 7.
  • 9. Three different Coaters at AASC Coaxial Energetic Deposition (CED TM ) Cathodic Arc Deposition (CAD) Filtered Cathodic Arc Deposition (FCAD)
  • 10. CED TM : Helical arc rotates in a weak B-field CED TM may be used to coat full cavities in the future B Field Trigger Mo Anode Mesh Nb Cathode
  • 11. CED TM : Grows a monolayer (≈4Å) of Nb in ≈2ms
  • 12. Energetic Deposition is different from sputtering and PVD Comparison of Stress build-up in low energy deposition, energetic condensation, and energetic condensation plus high voltage bias Relief of compressive stress by pulsed ion impact [*] [*] M. M. Bilek, R N. Tarrant, D. R. McKenzie, S H. N. Lim, and D G. McCulloch “Control of Stress and Microstructure in Cathodic Arc Deposited Films” IEEE TRANSACTIONS ON PLASMA SCIENCE , VOL. 31, NO. 5, OCTOBER 2003 (A. Anders) (A. Bendavid, CSIRO) (M.M. Bilek) Nb
  • 13.
  • 14.
  • 15. Recent results from Nb thin-films coated using the CED TM coater
  • 16.
  • 17.
  • 18.
  • 19. RRR as measured is an average over the film thickness (recall Larry’s talk on Monday?) RRR of uppermost layer (London depth) is higher than <RRR> Substrate bias improves RRR further ( see Anne-Marie’s talk to follow )
  • 20.
  • 21. XRD and EBSD measurements show hetero-epitaxial growth of single crystal Nb on a-sapphire and on MgO
  • 22.
  • 23.
  • 24.
  • 25.
  • 26.
  • 27.
  • 28. XRD measurements show polycrystalline Nb with more coherent texture grown on amorphous borosilicate This opens the possibility of Nb superconductors on cast Al cavities of the future Nb crystals grown on amorphous borosilicate
  • 29.
  • 30. SIC measurements at JLab Rs vs. T for thin film Nb on Cu sample TF-AASC-CED-Nb-Cu-103; EP, annealed at 750 C, then EP again
  • 31. The AASC/JLab/NSU team hopes to continue our methodical investigation of Nb, Nb 3 Sn, MoRe and other thin film SRF candidates, culminating in high field cavity tests after better understanding
  • 32. T c vs. substrate heating conditions: MgO