DocumentCode
2698389
Title
Chip-level reliability study of barrier engineered (BE) floating gate (FG) Flash memory devices
Author
Lue, Hang-Ting ; Pan, JiFong ; Chang, C.S. ; Wang, Szu-Yu ; Chang, Y.F. ; Lee, Y.C. ; Liaw, M.H. ; Chen, Y.J. ; Chen, K.F. ; Lo, Chester ; Huang, I.J. ; Han, T.T. ; Chen, M.S. ; Lu, W.P. ; Yang, T. ; Chen, K.C. ; Hsieh, Kuang-Yeu ; Lu, Chih-Yuan
Author_Institution
Emerging Central Lab., Macronix Int. Co., Ltd., Hsinchu, Taiwan
fYear
2010
fDate
2-6 May 2010
Firstpage
627
Lastpage
633
Abstract
Floating gate (FG) devices using barrier-engineered (BE) tunneling dielectric have been studied both theoretically and experimentally. Through WKB modeling the tunneling efficiency of various multi-layer tunneling barriers can be well predicted. Experimental results for FG devices with oxide-nitride-oxide (ONO) U-shaped barrier are examined to validate our model. Furthermore, a large-density array (1 Mb) was studied to provide chip-level reliability understandings. Finally, these results are compared with barrier engineered charge-trapping (CT) devices. Our results suggest that BE FG device is not promising in terms of serious reliability degradation and tail bits. Moreover, the speed enhancement is not better than using the conventional gate-coupling ratio (GCR) improvement or tunnel oxide scaling. On the other hand, CT devices do not have GCR and it need BE tunneling barrier to solve the erase and retention dilemma. We also prove that BE-SONOS device is immune to tail bits due to the nature of discrete trapped charge storage.
Keywords
flash memories; integrated circuit reliability; multilayers; tunnelling; BE tunneling barrier; BE-SONOS device; CT devices; FG devices; WKB modeling; barrier engineered charge-trapping devices; barrier engineered floating gate flash memory devices; barrier-engineered tunneling dielectric; chip-level reliability; discrete trapped charge storage; gate-coupling ratio; large-density array; multilayer tunneling barriers; oxide-nitride-oxide U-shaped barrier; reliability degradation; speed enhancement; tunnel oxide scaling; Current density; Degradation; Dielectric devices; Flash memory; High K dielectric materials; High-K gate dielectrics; Nonvolatile memory; Reliability engineering; Tail; Tunneling; Floating gate; Modeling; Reliability; Tunneling; barrier engineer (BE); charge-trapping memory; component;
fLanguage
English
Publisher
ieee
Conference_Titel
Reliability Physics Symposium (IRPS), 2010 IEEE International
Conference_Location
Anaheim, CA
ISSN
1541-7026
Print_ISBN
978-1-4244-5430-3
Type
conf
DOI
10.1109/IRPS.2010.5488758
Filename
5488758
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