Self-healing effects in a semi-ordered liquid for stable electronic conversion of high-energy radiation

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作者
Bradley R. Nullmeyer
Jae W. Kwon
J. David Robertson
Alexander Y. Garnov
机构
[1] University of Missouri-Columbia,Department of Electrical Engineering & Computer Science
[2] University of Missouri-Columbia,Department of Chemistry
[3] University of Missouri Research Reactor (MURR),undefined
[4] University of Missouri-Columbia,undefined
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Scientific Reports | / 8卷
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摘要
Radiation damage in solid-state semiconductors has, until now, placed strict limitations on the acceptable decay energies of radioisotopes in radiovoltaic cells. Relegation to low-energy beta-emitting isotopes has minimized the power output from these devices and limited the technology’s ability to deliver greater energy densities and longer lifetimes than conventional batteries. We demonstrate the self-healing abilities of a liquid-phase semiconducting alloy which can withstand high-energy alpha radiation. Neutron diffraction of liquid selenium-sulfur shows the liquid phase repairing damage sustained in the irradiation of the solid phase. This self-healing behavior results in long-lived power output in a liquid selenium-sulfur alphavoltaic cell. To the best of our knowledge, this marks the only successful demonstration of resistance to high-energy radiation (>500 keV) in a semiconducting material. This new robustness can potentially allow increases to the available energy density in radiovoltaic cells near 1000 times the current state of the art.
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