DocumentCode
1139872
Title
Identification of radiation-induced parasitic leakage paths using light emission microscopy
Author
Shaneyfelt, Marty R. ; Tangyunyong, Paiboon ; Hill, Thomas A. ; Soden, Jerry M. ; Flores, Richard S. ; Schwank, James R. ; Dodd, Paul E. ; Hash, Gerald L.
Author_Institution
Sandia Nat. Labs., Albuquerque, NM, USA
Volume
51
Issue
5
fYear
2004
Firstpage
2782
Lastpage
2786
Abstract
Eliminating radiation-induced parasitic leakage paths in integrated circuits (ICs) is key to improving their total dose hardness. Semiconductor manufacturers can use a combination of design and/or process techniques to eliminate known radiation-induced parasitic leakage paths. However, unknown or critical radiation-induced parasitic leakage may still exist on fully processed ICs and it is extremely difficult (if not impossible) to identify these leakage paths based on radiation induced parametric degradation. We show that light emission microscopy can be used to identify the location of radiation-induced parasitic leakage paths in ICs. This is illustrated by using light emission microscopy to find radiation-induced parasitic leakage paths in partially-depleted silicon on insulator static random-access memories (SRAMs). Once leakage paths were identified, modifications were made to the SRAM design to improve the total dose radiation hardness of the SRAMs. Light emission microscopy should prove to be an important tool for the development of future radiation hardened technologies and devices.
Keywords
SRAM chips; dosimetry; integrated circuit reliability; integrated circuit testing; leakage currents; radiation hardening (electronics); silicon-on-insulator; SRAM design; designing technique; integrated circuit reliability; integrated circuit testing; light emission microscopy; partially-depleted silicon on insulator static random-access memories; process technique; radiation effects; radiation hardening (electronics); radiation induced parametric degradation; radiation response; radiation-induced parasitic leakage paths; semiconductor manufacturers; total dose radiation hardness; CMOS technology; Degradation; Integrated circuit technology; Integrated circuit testing; Leakage current; Microscopy; Photonic integrated circuits; Radiation hardening; Silicon on insulator technology; Transistors; Integrated circuit reliability; electronics; integrated circuit testing; light emission microscopy; radiation effects; radiation hardening; radiation response; total dose;
fLanguage
English
Journal_Title
Nuclear Science, IEEE Transactions on
Publisher
ieee
ISSN
0018-9499
Type
jour
DOI
10.1109/TNS.2004.835074
Filename
1344417
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