Radiation tolerance of two-dimensional material-based devices for space applications
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Vogl, Tobias
Sripathy, Kabilan
Sharma, Ankur
Reddy, Prithvi
Sullivan, James
Machacek, Joshua
Zhang, Linglong
Karouta, Fouad
Buchler, Ben
Doherty, Marcus
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Macmillan Publishers Ltd
Abstract
Characteristic for devices based on two-dimensional materials are their low size, weight and power requirements. This makes them advantageous for use in space instrumentation, including photovoltaics, batteries, electronics, sensors and light sources for long-distance quantum communication. Here we present a comprehensive study on combined radiation effects in Earth's atmosphere on various devices based on these nanomaterials. Using theoretical modeling packages, we estimate relevant radiation levels and then expose field-effect transistors, single-photon sources and monolayers as building blocks for future electronics to gamma-rays, protons and electrons. The devices show negligible change in performance after the irradiation, suggesting robust suitability for space use. Under excessive gamma-radiation, however, monolayer WS2 shows decreased defect densities, identified by an increase in photoluminescence, carrier lifetime and a change in doping ratio proportional to the photon flux. The underlying mechanism is traced back to radiation-induced defect healing, wherein dissociated oxygen passivates sulfur vacancies.
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Nature Communications
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Open Access
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Creative Commons Attribution 4.0 International License
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