Active bialkali photocathodes on free-standing graphene substrates
Abstract
The hexagonal structure of graphene gives rise to the property of gas impermeability, motivating its investigation for a new application: protection of semiconductor photocathodes in electron accelerators. These materials are extremely susceptible to degradation in efficiency through multiple mechanisms related to contamination from the local imperfect vacuum environment of the host photoinjector. Few-layer graphene has been predicted to permit a modified photoemission response of protected photocathode surfaces, and recent experiments of single-layer graphene on copper have begun to confirm these predictions for single crystal metallic photocathodes. Unlike metallic photoemitters, the integration of an ultra-thin graphene barrier film with conventional semiconductor photocathode growth processes is not straightforward. A first step toward addressing this challenge is the growth and characterization of technologically relevant, high quantum efficiency bialkali photocathodes grown on ultra-thin free-standing graphene substrates. Photocathode growth on free-standing graphene provides the opportunity to integrate these two materials and study their interaction. Specifically, spectral response features and photoemission stability of cathodes grown on graphene substrates are compared to those deposited on established substrates. In addition we observed an increase of work function for the graphene encapsulated bialkali photocathode surfaces, which is predicted by our calculations. The results provide a unique demonstration of bialkali photocathodes on free-standing substrates, and indicate promise towards our goal of fabricating high-performance graphene encapsulated photocathodes with enhanced lifetime for accelerator applications.
Keywords
Cite
@article{arxiv.1703.00921,
title = {Active bialkali photocathodes on free-standing graphene substrates},
author = {Hisato Yamaguchi and Fangze Liu and Jeffrey DeFazio and Claudia W. Narvaez Villarrubia and Daniel Finkenstadt and Andrew Shabaev and Kevin L. Jensen and Vitaly Pavlenko and Michael Mehl and Sam Lambrakos and Gautam Gupta and Aditya D. Mohite and Nathan A. Moody},
journal= {arXiv preprint arXiv:1703.00921},
year = {2017}
}
Comments
21 pages, 5 figures, accepted to npj 2D Materials and Applications