Published December 2017 | Version v1
Journal article

Beta particle transport and its impact on betavoltaic battery modeling

  • 1. Virginia Tech, Department of Mechanical Engineering, 402 Goodwin Hall, Blacksburg, VA 24061 (United States)
  • 2. University of Missouri, Nuclear Science and Engineering Institute, Columbia, MO 65211 (United States)

Description

Highlights: • The impact on beta particle penetration depth and energy deposition for betavoltaic battery design are studied using MCNP. • Different beta particle transport approaches are examined for betavoltaic battery by junction depth analysis. • An isotropic source needs to be considered in the beta particle transport model. • The inclusion of the self-absorption effect improves the betavoltaic battery model significantly. - Abstract: Simulation of beta particle transport from a Ni-63 radioisotope in silicon using the Monte Carlo N-Particle (MCNP) transport code for monoenergetic beta particle average energy, monoenergetic beta particle maximum energy, and the more precise full beta energy spectrum of Ni-63 were demonstrated. The beta particle penetration depth and the shape of the energy deposition varied significantly for different transport approaches. A penetration depth of 2.25±0.25 µm with a peak in energy deposition was found when using a monoenergetic beta particle average energy and a depth of 14.25±0.25 µm with an exponential decrease in energy deposition was found when using a full beta energy spectrum and a 0° angular variation. For a 90° angular variation, i.e. an isotropic source, the penetration depth was decreased to 12.75±0.25 µm and the backscattering coefficient increased to 0.46 with 30.55% of the beta energy escaping when using a full beta energy spectrum. Similarly, for a 0° angular variation and an isotropic source, an overprediction in the short circuit current and open circuit voltage solved by a simplified drift-diffusion model was observed when compared to experimental results from the literature. A good agreement in the results was found when self-absorption and isotope dilution in the source was considered. The self-absorption effect was 15% for a Ni-63 source with an activity of 0.25 mCi. This effect increased to about 28.5% for a higher source activity of 1 mCi due to an increase in thickness of the Ni-63 source. Source thicknesses of approximately 0.1 µm and 0.4 µm for these Ni-63 activities predicted about 15% and 28.5% self-absorption in the source, respectively, using MCNP simulations with an isotropic source. The modeling assumptions with different beta particle energy inputs, junction depth of the semiconductor, backscattering of beta particles, an isotropic beta source, and self-absorption of the radioisotope have significant impacts in betavoltaic battery design.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.apradiso.2017.09.009

Additional details

Identifiers

DOI
10.1016/j.apradiso.2017.09.009;
PII
S0969804317300568;

Publishing Information

Journal Title
Applied Radiation and Isotopes
Journal Volume
130
Journal Page Range
p. 80-89
ISSN
0969-8043
CODEN
ARISEF

Optional Information

Copyright
Copyright (c) 2017 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.