Author: Minor, A.
Paper Title Page
TUYD4 Towards High Brightness from Plasmon-Enhanced Photoemitters 285
 
  • C.M. Pierce, I.V. Bazarov, J.M. Maxson
    Cornell University (CLASSE), Cornell Laboratory for Accelerator-Based Sciences and Education, Ithaca, New York, USA
  • D.B. Durham, D. Filippetto, F. Riminucci
    LBNL, Berkeley, California, USA
  • A.H. Kachwala, S.S. Karkare
    Arizona State University, Tempe, USA
  • A. Minor
    UC Berkeley, Berkeley, California, USA
 
  Funding: This work is supported by DOE BES Contract No. DE-AC02-05CH11231. C.P. acknowledges NSF Award PHY-1549132 (CBB) and the US DOE SCGSR program. DD was supported by NSF Grant No. DMR-1548924 (STROBE).
Plas­monic cath­odes, whose nanoscale fea­tures may lo­cally en­hance op­ti­cal en­ergy from the dri­ving laser trapped at the vac­uum in­ter­face, have emerged as a promis­ing tech­nol­ogy for im­prov­ing the bright­ness of metal cath­odes. A six or­ders of mag­ni­tude im­prove­ment [1] in the non-lin­ear yield of met­als has been ex­per­i­men­tally demon­strated through this type of nanopat­tern­ing. Fur­ther, nanoscale lens struc­tures may focus light below its free-space wave­length of­fer­ing mul­ti­pho­ton pho­toe­mis­sion from a re­gion near 10 times smaller [2] than that achiev­able in typ­i­cal pho­toin­jec­tors. In this pro­ceed­ing, we re­port on our ef­forts to char­ac­ter­ize the bright­ness of two plas­monic cath­ode con­cepts: a spi­ral lens and a nanogroove array. We demon­strate an abil­ity to en­gi­neer and fab­ri­cate nanoscale pat­terned cath­odes by com­par­ing their op­ti­cal prop­er­ties with those com­puted with a fi­nite dif­fer­ence time do­main (FDTD) code. The emit­tance and non­lin­ear yield of the cath­odes are mea­sured under ul­tra­fast laser ir­ra­di­a­tion. Fi­nally, prospects of this tech­nol­ogy for the con­trol and ac­cel­er­a­tion of charged par­ti­cle beams are dis­cussed.
[1] Polyakov, A., et al. (2013). Physical Review Letters, 110(7), 076802.
[2] Durham, D. B., et al. (2019). Physical Review Applied, 12(5), 054057.
 
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DOI • reference for this paper ※ doi:10.18429/JACoW-NAPAC2022-TUYD4  
About • Received ※ 05 August 2022 — Revised ※ 08 August 2022 — Accepted ※ 11 August 2022 — Issue date ※ 13 September 2022
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