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신현석

Shin, Hyeon Suk
Lab for Carbon and 2D Materials
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Quantum Efficiency Enhancement of Bialkali Photocathodes by an Atomically Thin Layer on Substrates

Author(s)
Yamaguchi, HisatoLiu, FangzeDeFazio, JeffreyGaowei, MengjiaGuo, LeiAlexander, AnnaYoon, Seong InHyun, ChoheeCritchley, MatthewSinsheimer, JohnPavlenko, VitalyStrom, DerekJensen, Kevin L.Finkenstadt, DanielShin, Hyeon SukYamamoto, MasahiroSmedley, JohnMoody, Nathan A.
Issued Date
2019-12
DOI
10.1002/pssa.201900501
URI
https://scholarworks.unist.ac.kr/handle/201301/30429
Fulltext
https://onlinelibrary.wiley.com/doi/full/10.1002/pssa.201900501
Citation
PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE, v.216, no.23, pp.1900501
Abstract
Quantum efficiency (QE) enhancement in accelerator technology relevant to antimonide photocathodes (K2CsSb) is achieved by interfacing them with atomically thin 2D crystal layers. The enhancement occurs in a reflection mode, when a 2D crystal is placed in between the photocathodes and optically reflective substrates. Specifically, the peak QE at 405 nm (3.1 eV) increases by a relative 10%, whereas the long wavelength response at 633 nm (2.0 eV) increases by a relative 36% on average and up to 80% at localized "hot spot" regions when photocathodes are deposited onto graphene-coated stainless steel. There is a similar effect for photocathodes deposited on hexagonal boron nitride monolayer coatings using nickel substrates. The enhancement does not occur when reflective substrates are replaced with optically transparent sapphire. Optical transmission, X-ray diffraction (XRD), and X-ray fluorescence (XRF) revealed that thickness, crystal orientation, quality, and elemental stoichiometry of photocathodes do not appreciably change due to 2D crystal coatings. These results suggest that optical interactions are responsible for the QE enhancements when 2D crystal sublayers are present on reflective substrates, and provide a pathway toward a simple method of QE enhancement in semiconductor photocathodes by an atomically thin 2D crystal on substrates.
Publisher
WILEY-V C H VERLAG GMBH
ISSN
1862-6300
Keyword (Author)
accelerator technologyantimonide photocathodesbialkaligraphenequantum efficiency enhancement
Keyword
GRAPHENE FILMSLARGE-AREA

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