Different threshold and bipolar resistive switching mechanisms in reactively sputtered amorphous undoped and Cr-doped vanadium oxide thin films
暂无分享,去创建一个
Dirk Wouters | Rainer Waser | Regina Dittmann | Etienne Janod | Marie-Paule Besland | Andreas Kindsmüller | R. Dittmann | R. Waser | D. Wouters | M. Besland | E. Janod | J. A. J. Rupp | Madec Querré | J. Rupp | A. Kindsmüller | M. Querré
[1] M. Besland,et al. Metal–insulator transitions in (V1-xCrx)2O3 thin films deposited by reactive direct current magnetron co-sputtering , 2016 .
[2] Rainer Waser,et al. Multidimensional Simulation of Threshold Switching in NbO2 Based on an Electric Field Triggered Thermal Runaway Model , 2016 .
[3] Alexander Pergament,et al. Electrical Switching in Thin Film Structures Based on Transition Metal Oxides , 2015 .
[4] Benoit Corraze,et al. Resistive Switching in Mott Insulators and Correlated Systems , 2015 .
[5] N. Aslam,et al. Atomic Layer Deposition of Transparent VOx Thin Films for Resistive Switching Applications , 2014 .
[6] J. Bain,et al. Electronic Instabilities Leading to Electroformation of Binary Metal Oxide‐based Resistive Switches , 2014 .
[7] Alexander Pergament,et al. On the Problem of Metal-Insulator Transitions in Vanadium Oxides , 2013 .
[8] Marcelo Rozenberg,et al. Universal Electric‐Field‐Driven Resistive Transition in Narrow‐Gap Mott Insulators , 2013, Advanced materials.
[9] H. Hwang,et al. Thermally activated non-linearity of device in resistance-switching memory for cross-point array applications , 2013 .
[10] R. Waser,et al. Current Compliance-Dependent Nonlinearity in ${\rm TiO}_{2}$ ReRAM , 2013, IEEE Electron Device Letters.
[11] Malgorzata Jurczak,et al. Complementary Role of Field and Temperature in Triggering ON/OFF Switching Mechanisms in ${\rm Hf}/{\rm HfO}_{2}$ Resistive RAM Cells , 2013, IEEE Transactions on Electron Devices.
[12] Mark Lee,et al. Electrical and Optical Characterization of the Metal-Insulator Transition Temperature in Cr-doped VO2 Thin Films. , 2012 .
[13] R. Dittmann,et al. Origin of the Ultra‐nonlinear Switching Kinetics in Oxide‐Based Resistive Switches , 2011 .
[14] H. Hwang,et al. Excellent Selector Characteristics of Nanoscale $ \hbox{VO}_{2}$ for High-Density Bipolar ReRAM Applications , 2011, IEEE Electron Device Letters.
[15] Jae Hyuck Jang,et al. Atomic structure of conducting nanofilaments in TiO2 resistive switching memory. , 2010, Nature nanotechnology.
[16] R. Dittmann,et al. Redox‐Based Resistive Switching Memories – Nanoionic Mechanisms, Prospects, and Challenges , 2009, Advanced materials.
[17] Shriram Ramanathan,et al. Observation of electric field-assisted phase transition in thin film vanadium oxide in a metal-oxide-semiconductor device geometry , 2008 .
[18] Ivan K Schuller,et al. Multiple avalanches across the metal-insulator transition of vanadium oxide nanoscaled junctions. , 2008, Physical review letters.
[19] V. Sidorov,et al. Electrodynamics near the metal-to-insulator transition in V 3 O 5 , 2007, cond-mat/0701742.
[20] Guy Marin,et al. Determination of the V2p XPS binding energies for different vanadium oxidation states (V5+ to V0+) , 2004 .
[21] R. Arita,et al. Breakdown of a Mott insulator: a nonadiabatic tunneling mechanism. , 2003, Physical review letters.
[22] W. Reichelt,et al. Mixed-valence vanadium oxides studied by XPS , 2000 .
[23] A. Pergament,et al. Electroforming and Switching in Oxides of Transition Metals: The Role of Metal-Insulator Transition in the Switching Mechanism , 1996 .
[24] G. Kelsall,et al. Redox chemistry of H2S oxidation by the British Gas Stretford process part IV: V-S-H2O thermodynamics and aqueous vanadium (v) reduction in alkaline solutions , 1993, Journal of Applied Electrochemistry.
[25] H. Wriedt,et al. The O-V (Oxygen-Vanadium) system , 1989 .
[26] J. Thornton. The microstructure of sputter-deposited coatings , 1986 .
[27] J. P. Remeika,et al. Mott Transition in Cr-DopedV2O3 , 1969 .
[28] F. J. Morin,et al. Oxides Which Show a Metal-to-Insulator Transition at the Neel Temperature , 1959 .
[29] G. Andersson. STUDIES ON VANADIUM OXIDES. I. PHASE ANALYSIS , 1954 .