Materials, technologies, and circuit concepts for nanocrossbar-based bipolar RRAM

The paper reports on the characterization of bipolar resistive switching materials and their integration into nanocrossbar structures, as well as on different memory operation schemes in terms of memory density and the challenging problem of sneak paths. TiO 2 , WO 3 , GeSe, SiO 2 and MSQ thin films...

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Veröffentlicht in:Applied physics. A, Materials science & processing Materials science & processing, 2011-03, Vol.102 (4), p.791-809
Hauptverfasser: Kügeler, Carsten, Rosezin, Roland, Linn, Eike, Bruchhaus, Rainer, Waser, Rainer
Format: Artikel
Sprache:eng
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Zusammenfassung:The paper reports on the characterization of bipolar resistive switching materials and their integration into nanocrossbar structures, as well as on different memory operation schemes in terms of memory density and the challenging problem of sneak paths. TiO 2 , WO 3 , GeSe, SiO 2 and MSQ thin films were integrated into nanojunctions of 100×100 nm 2 . The variation between inert Pt and Cu or Ag top electrodes leads to valence change (VCM) switching or electrochemical metallization (ECM) switching and has significant impact on the resistive properties. All materials showed promising characteristics with switching speeds down to 10 ns, multilevel switching, good endurance and retention. Nanoimprint lithography was found to be a suitable tool for processing crossbar arrays down to a feature size of 50 nm and 3D stacking was demonstrated. The inherent occurrence of current sneak paths in passive crossbar arrays can be circumvented by the implementation of complementary resistive switching (CRS) cells. The comparison with other operation schemes shows that the CRS concept dramatically increases the addressable memory size to about 10 10 bit.
ISSN:0947-8396
1432-0630
DOI:10.1007/s00339-011-6287-2