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DOE OSTI · 2502200

Wireless System Development for GaN-Based Transmitters for Advanced Nuclear Reactor Environments

Abstract

The market for consumer electronics is dominated by Si-based electronics. Many Si-based complementary metal–oxide–semiconductor (CMOS) devices are reaching their limitations in terms of switching frequencies, voltages, currents, and temperatures. Furthermore, these devices are widely known to be susceptible to ionizing radiation and neutrons. Advanced nuclear reactors, especially microreactors and small modular reactors, require wireless electronics that can survive larger neutron and gamma doses than Si CMOS. Because of their size, electronics will need to be placed closer to the reactor cores, and cabling capabilities may be limited. However, GaN high-electron-mobility transistors (HEMTs) have been shown to switch faster with higher gains, and they can achieve current and voltage limits beyond traditional Si CMOS. However, they have less market maturity and have undergone less testing. These GaN HEMTs have been shown to survive ionizing radiation with little effects, but the effects of neutron radiation remain widely unknown. In this report, a wireless electronic system capable of supporting multiple radiation-hardened (rad-hard) sensors is presented. The proposed transmission scheme was designed to be simple to increase the likelihood of success in the immature GaN HEMT process and in high-radiation environments. The transmission system was tested using software-defined radios to emulate the transmission scheme before the transmitter circuitry in the GaN process was developed.

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BibTeXRIS

McCormick, Tyler W., Witherspoon, C. Brett, Ericson, M. Nance, Bull Ezell, N. Dianne, Lanza, Jack, Joishi, Chandan, Lee, Hyunsoo, Cao, Raymond, Rajan, Siddharth, Reed, F. Kyle. 2023-06-01. Wireless System Development for GaN-Based Transmitters for Advanced Nuclear Reactor Environments. https://doi.org/10.2172/2502200

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