Nanostructured Ultrafast Silicon-Tip Optical Field-Emitter Arrays
Author(s) -
Michael Swanwick,
Phillip D. Keathley,
Arya Fallahi,
Peter Krogen,
Guillaume Laurent,
Jeffrey Moses,
Franz X. Kärtner,
Luis Fernando VelásquezGarcía
Publication year - 2014
Publication title -
nano letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 4.853
H-Index - 488
eISSN - 1530-6992
pISSN - 1530-6984
DOI - 10.1021/nl501589j
Subject(s) - field electron emission , ultrashort pulse , common emitter , femtosecond , electron , silicon , materials science , optoelectronics , cathode , quantum tunnelling , optics , electron gun , attosecond , field emitter array , laser , cathode ray , physics , chemistry , quantum mechanics
Femtosecond ultrabright electron sources with spatially structured emission are an enabling technology for free-electron lasers, compact coherent X-ray sources, electron diffractive imaging, and attosecond science. In this work, we report the design, modeling, fabrication, and experimental characterization of a novel ultrafast optical field emission cathode comprised of a large (>100,000 tips), dense (4.6 million tips·cm(-2)), and highly uniform (<1 nm tip radius deviation) array of nanosharp high-aspect-ratio silicon columns. Such field emitters offer an attractive alternative to UV photocathodes while providing a direct means of structuring the emitted electron beam. Detailed measurements and simulations show pC electron bunches can be generated in the multiphoton and tunneling regime within a single optical cycle, enabling significant advances in electron diffractive imaging and coherent X-ray sources on a subfemtosecond time scale, not possible before. At high charge emission yields, a slow rollover in charge is explained as a combination of the onset of tunneling emission and the formation of a virtual cathode.
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