Betavoltaic performance under extreme temperatures

Author:

Adams Tom1,Revankar Shripad2,Cabauy Peter3,Elkind Bret3,Cheu Darrell4

Affiliation:

1. Naval Surface Warfare Center, Crane Division, Crane, Ind., USA + Purdue University, School of Nuclear Engineering, West Lafayette, Ind., USA

2. Purdue University, School of Nuclear Engineering, West Lafayette, Ind., USA + Division of Advanced Nuclear Engineering, POSTECH, Pohang, Gyeongbuk, South Korea

3. City Labs, Inc., Homestead, Fla., USA

4. Purdue University, School of Nuclear Engineering, West Lafayette, Ind., USA

Abstract

Longevity of sensors and portable devices is severely limited by temperature, chemical instability, and electrolyte leakage issues associated with conventional electrochemical batteries. Betavoltaics, which operate similar to photo voltaics, can operate in a wide temperature range safely without permanent degradation. Though not a new concept, which began in the 1950's and peaked in the mid 1970's, research has been minimal and sporadic until recent advancements in ultra-low power electronics and materialization of low power applications. The technology is rapidly maturing, generating research, and development in increasing the beta emitting source and semiconductor efficiencies. This study presents an update on betavoltaic technology, results from temperature evaluation on commercially available General Licensed betavoltaic cells, development of a hybrid system for latent and burst power, modeling and simulation techniques and results, and current and proposed research and development. Betavoltaic performance was successfully demonstrated for a wide temperature range (-30?C to 70?C). Short circuit current and open circuit voltage were used to compare electrical performance. Results indicate that the open-circuit voltage and maximum power decreased as temperature increased due to increases in the semiconductor's intrinsic carrier concentration.

Publisher

National Library of Serbia

Subject

Safety, Risk, Reliability and Quality,Nuclear Energy and Engineering

Cited by 6 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Evaluation of lithium as a tritium storage medium for betavoltaics;Journal of Applied Physics;2024-01-10

2. Demonstration and kinetics of hydrogen loading in titanium thin films;International Journal of Hydrogen Energy;2024-01

3. Hydrogen Loading System for Thin Films for Betavoltaics;Journal of Nuclear Engineering and Radiation Science;2023-03-13

4. A study on GaN-based betavoltaic batteries;Semiconductor Science and Technology;2022-10-27

5. Tunable direct beta-radiation harvester at the nanowatt scale;Sensors and Actuators A: Physical;2018-11

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