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000597118 037__ $$aPUBDB-2023-06444
000597118 041__ $$aEnglish
000597118 1001_ $$0P:(DE-H253)PIP1086522$$aMohanty, Sandeep$$b0$$eCorresponding author
000597118 1112_ $$aPhotocathode Physics for Photoinjectors$$cNew York$$d2023-10-03 - 2023-10-05$$gP3 Photocathode Workshop$$wUSA
000597118 245__ $$aDevelopment of Multialkali antimonides photocathodesfor high-brightness photoinjectors
000597118 260__ $$c2023
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000597118 502__ $$cDESY, INFN LASA
000597118 520__ $$aMulti-alkali antimonide photocathodes can have high quantum efficiency similar to UV-sensitive (Cs₂Te) photocathodes but with the advantages of photoemission sensitivity in the green wavelength and a significant reduction in the mean transverse energy of photoelectrons. In order to optimize and better understand the photo emissive film properties of K-Cs-Sb photocathodes, two photocathodes with different thicknesses were grown on molybdenum substrates via a sequential deposition method in a new preparation system at INFN LASA. During the deposition, a "multi-wavelengths" diagnostic, i.e., the measurements of the real-time photocurrent and reflectivity at different wavelengths (in the range from 254 nm – 690 nm), has been applied during the growth. Optical spectra of these semiconductors provide a rich source of information on their electronic properties. This new information, together with past results obtained with our standard diagnostic tools, will help to improve the understanding of the growing process of these photocathodes. In addition, in the framework of density functional theory (DFT), we investigated the electronic and optical properties of K₂CsSb and K₃Sb materials. This allowed us to establish a correlation between the calculated and measured optical properties, such as reflectivity, which gives a valuable addition to further understanding the photoemissive material's properties. In this talk, we present and discuss the experimental results obtained from the two different thickness K-Cs-Sb photocathodes, along with the DFT results of K₃Sb, and K₂CsSb materials.
000597118 536__ $$0G:(DE-HGF)POF4-621$$a621 - Accelerator Research and Development (POF4-621)$$cPOF4-621$$fPOF IV$$x0
000597118 693__ $$0EXP:(DE-H253)PITZ-20150101$$5EXP:(DE-H253)PITZ-20150101$$ePhoto Injector Test Facility$$x0
000597118 7001_ $$0P:(DE-H253)PIP1004128$$aKrasilnikov, M.$$b1$$udesy
000597118 7001_ $$0P:(DE-H253)PIP1011785$$aOppelt, A.$$b2$$udesy
000597118 7001_ $$0P:(DE-H253)PIP1004143$$aStephan, F.$$b3$$udesy
000597118 7001_ $$aSertore, D.$$b4
000597118 7001_ $$aMonaco, L.$$b5
000597118 7001_ $$aGuerini Rocco, G.$$b6
000597118 8564_ $$uhttps://www.bnl.gov/pppworkshop/
000597118 8564_ $$uhttps://bib-pubdb1.desy.de/record/597118/files/Mohanty_P3_KCsSb_cathode.odp$$yRestricted
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000597118 9101_ $$0I:(DE-588b)2008985-5$$6P:(DE-H253)PIP1004128$$aDeutsches Elektronen-Synchrotron$$b1$$kDESY
000597118 9101_ $$0I:(DE-588b)2008985-5$$6P:(DE-H253)PIP1011785$$aDeutsches Elektronen-Synchrotron$$b2$$kDESY
000597118 9101_ $$0I:(DE-588b)2008985-5$$6P:(DE-H253)PIP1004143$$aDeutsches Elektronen-Synchrotron$$b3$$kDESY
000597118 9131_ $$0G:(DE-HGF)POF4-621$$1G:(DE-HGF)POF4-620$$2G:(DE-HGF)POF4-600$$3G:(DE-HGF)POF4$$4G:(DE-HGF)POF$$aDE-HGF$$bForschungsbereich Materie$$lMaterie und Technologie$$vAccelerator Research and Development$$x0
000597118 9141_ $$y2023
000597118 9201_ $$0I:(DE-H253)Z_PITZ-20210408$$kZ_PITZ$$lTechnologie$$x0
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