EngineeringComputer SciencePhysics

P. Dodd, L. Massengill

2003.7.9IEEE TRANSACTIONS ON NUCLEAR SCIENCE

DOI: 10.1109/tns.2003.813129

tlooto Summary

Physical mechanisms responsible for nondestructive single-event effects in digital microelectronics are reviewed, concentrating on silicon MOS devices and integrated circuits and the impact of technology trends on single- event susceptibility and future areas of concern are explored.

Abstract

Physical mechanisms responsible for nondestructive single-event effects in digital microelectronics are reviewed, concentrating on silicon MOS devices and integrated circuits. A brief historical overview of single-event effects in space and terrestrial systems is given, and upset mechanisms in dynamic random access memories, static random access memories, and combinational logic are detailed. Techniques for mitigating single-event upset are described, as well as methods for predicting device and circuit single-event response using computer simulations. The impact of technology trends on single-event susceptibility and future areas of concern are explored.

Citation format

DODD, P.; MASSENGILL, L. Basic mechanisms and modeling of single-event upset in digital microelectronics. IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 2003, 50: 583–602.