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Multiple-year battery based on highly efficient and stable dual-site radioactive isotope dye-sensitized betavoltaic cell

Title
Multiple-year battery based on highly efficient and stable dual-site radioactive isotope dye-sensitized betavoltaic cell
Author(s)
Kim, Hong SooLee, JunhoLee, Sang HoonPowar, Niket SureshNaseem, Muhammad BilalKim, Chol HyunZhou, HaoranKim, Hwan KyuGoddard, William A.In, Su-Il
Issued Date
2024-06
Citation
Journal of Power Sources, v.606
Type
Article
Author Keywords
Nuclear batteriesBetavoltaic cellsRadioactive isotope of carbonDye -sensitized
Keywords
TIO2GRAPHITELIGHTC-14
ISSN
0378-7753
Abstract
There is an unmet need for a battery that can provide full power for several decades for applications powering implants, remote applications, and satellites. We develop a novel betavoltaic device, a dual-site radioactive isotope dye-sensitized betavoltaic cell (d-DSBC), which is powered by the decay energy of the radioactive isotope of carbon. This device treats both the anode and cathode with a β-radiation source (dual-site source) to achieve a betavoltaic design with improved β-radiation absorption. The anode is composed of a TiO2 layer first coated with radioactive isotope of citric acid, and then a ruthenium complex dye that acts as a charge generating layer. The cathode consists of a radioactive isotope of carbon nanoparticles/quantum dots. The d-DSBC exhibits a high power density per radioactive source of 20.75 nW cm−2 mCi−1, and an energy conversion efficiency of 2.86 %. These results represent a considerable step towards the practical application of betavoltaic cells. © 2024 Elsevier B.V.
URI
http://hdl.handle.net/20.500.11750/56730
DOI
10.1016/j.jpowsour.2024.234427
Publisher
Elsevier
Related Researcher
  • 인수일 In, Su-Il
  • Research Interests CO2 conversion to hydrocarbon fuels; Water splitting for hydrogen generation; Quantum dot devices; Dye sensitized solar cells; Environmental remediation; Synthesis of functional nanomaterials; CO2 연료전환; 수소생산을 위한 광전기화학적 물분해; 양자점 태양전지; 염료감응 태양전지; 공해물질 저감연구; 기능성 나노소재 개발
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Department of Energy Science and Engineering Green and Renewable Energy for Endless Nature(GREEN) Lab 1. Journal Articles

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