RADIATION MONITORING DEVICES, INC. — Department of Energy SBIR Phase I: 09b

RADIATION MONITORING DEVICES, INC. — SBIR Phase I award from Department of Energy.

Amount
$199,983
Agency
Department of Energy
Program / Phase
SBIR · Phase I
Topic
09b
Solicitation
DE-FOA-0002145
NAICS
Place of performance
MA
Period
2020-02-18 → 2020-11-17

Description

The Basic Energy Sciences Report on DOE Facility Upgrades has identified The Linear Coherent Light Source II High Energy Upgrade LCLS II-HE) as “absolutely central to contribute to world leading science”. LCLS II-HE will provide X-ray energies above 5 keV. Even harder X-rays are necessary to study atomic structure dynamics, electronic and nuclear coupling in biological and chemical processes, and energy materials in situ. LCLS II-HE could potentially reach 20 keV, but it requires a factor of ten improvement in electron beam brightness. The ultimate beam brightness is limited by the least mean transverse energy or low emittance) of the electrons injected from the photocathode. Unfortunately, the currently-grown photocathodes for LCLS-II are inadequate to meet the future requirements because of their rough surfaces and poor chemical composition. RMD seeks to address the needs of the LCLS-II upgrade by growing the photocathode by sputtering technique in stark departure from the traditional evaporation technique. These cathodes will have a surface roughness < 1 nm rms) and thus be able to meet the low emittance requirements for the beam. These cathodes would be deposited on appropriate cathode “pucks” that are compatible with current-day LCLS-II operation. In addition, the cathodes will be protected by 2D material for long lifetime, and packaged in air-stable cartridges enabling their stockpiling – allo wing a reliable supply for LCLS-II operation. RMD proposes to demonstrate a packaged photocathode deposited on LCLS-II-compatible cathode puck. The photocathode will be sputter-deposited bialkali cathode with at least 6% QE at 532 nm and with surface roughness of less than 1 nm rms). In a parallel effort, the application of 2D protective layers to the cathode surface will be evaluated. The availability of packaged cathodes could not only streamline the supply of commercial cathodes for accelerators at various national labs but also bring cutting-edge physics into small industries and university labs. The proposed technology has the potential to disrupt the commercial photocathode manufacturing in order to realize large area cathodes with >40% QE in a consistent manner, which will enable manufacturing of such cathodes in the United States. The technology will enable cost effective photocathode deposition over large areas, which will impact the realization of cost competitive new detectors such as the Large Area Picosecond Photo Detectors LAPPDs). Availability of such detectors will have a profound impact on full body scanners for medical investigations using PET, tomographic x-ray imaging, border security investigations, scattering neutron detectors for spallation sources to perform basic sciences, deep underground neutrino experiments DUNE), or the large water neutrino detection systems.