Skip to main content
U.S. Department of Energy
Office of Scientific and Technical Information

Novel Materials and Devices for Solid-State Neutron Detection

Technical Report ·
DOI:https://doi.org/10.2172/1562846· OSTI ID:1562846

Neutron sensing is critical in civilian, military, industrial, biological, medical, basic research, and environmental applications. Conventional neutron sensors are limited by size, weight, cost, portability, and helium supply. Here the microfabrication of Gd conversion material-based heterojunction diodes is described for detecting thermal neutrons using electrical signals produced by internal conversion electrons (ICE). Films with negligible stress were produced at the tensile-compressive crossover point, enabling Gd coatings of any desired thickness by controlling the radiofrequency sputtering power and using the zero-point near p(Ar) of 50 mTorr at 100 W. Post-deposition Gd oxidation-induced spallation was eliminated by growing a residual stress-free 50 nm neodymium-doped aluminum cap layer atop Gd. Resultant coatings were stable for at least six years demonstrating excellent product shelf life. Depositing Gd on the diode surface eliminated air gap, leading to improved efficiency and facilitating monolithic microfabrication. The conversion electron spectrum was dominated by ICE with energies of 72, 132, and 174 keV. Results are reported on neutron reflection and moderation by polyethylene for enhanced sensitivity and γ- and X-ray elimination for improved specificity. Optimal Gd thickness was 10.4 μm with 300 μm thick partially depleted diode of 300 mm2 active surface area. Fast detection within 10 minutes at a neutron source-to-diode distance of 11.7 cm was achieved using this configuration. All ICE energies along with γ-ray and Kα X-ray were modeled to emphasize correlations between experiment and theory and to calculate efficiencies. Semiconductor thermal neutron detectors offer advantages for field-sensing of radioactive neutron sources.

Research Organization:
Sandia National Laboratories (SNL-NM), Albuquerque, NM (United States)
Sponsoring Organization:
USDOE National Nuclear Security Administration (NNSA)
DOE Contract Number:
AC04-94AL85000
OSTI ID:
1562846
Report Number(s):
SAND--2016-10174; 648185
Country of Publication:
United States
Language:
English

Similar Records

Microfabrication of a gadolinium-derived solid-state sensor for thermal neutrons
Journal Article · Sat Mar 25 00:00:00 EDT 2017 · Journal of Radiation Research · OSTI ID:1361653

Effect of thickness and annealing on stress in tantalum and tantalum nitride thin film hard coatings
Book · Thu May 01 00:00:00 EDT 1997 · OSTI ID:467639

High efficiency neutron sensitive amorphous silicon pixel detectors
Conference · Sun Oct 31 23:00:00 EST 1993 · OSTI ID:10114939

Related Subjects