Geometric conductive filament confinement by nanotips for resistive switching of HfO2-RRAM devices with high performance

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作者
Gang Niu
Pauline Calka
Matthias Auf der Maur
Francesco Santoni
Subhajit Guha
Mirko Fraschke
Philippe Hamoumou
Brice Gautier
Eduardo Perez
Christian Walczyk
Christian Wenger
Aldo Di Carlo
Lambert Alff
Thomas Schroeder
机构
[1] IHP GmbH – Leibniz institute for innovative microelectronics,
[2] Electronic Materials Research Laboratory,undefined
[3] Key Laboratory of the Ministry of Education & International Center for Dielectric Research,undefined
[4] Xi’an Jiaotong University,undefined
[5] Dept. Electronics Engineering University of Rome,undefined
[6] Institut des Nanotechnologies de Lyon (INL),undefined
[7] Institute of Materials Science,undefined
[8] Technische Universität Darmstadt,undefined
[9] Brandenburgische Technische Universität,undefined
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摘要
Filament-type HfO2-based RRAM has been considered as one of the most promising candidates for future non-volatile memories. Further improvement of the stability, particularly at the “OFF” state, of such devices is mainly hindered by resistance variation induced by the uncontrolled oxygen vacancies distribution and filament growth in HfO2 films. We report highly stable endurance of TiN/Ti/HfO2/Si-tip RRAM devices using a CMOS compatible nanotip method. Simulations indicate that the nanotip bottom electrode provides a local confinement for the electrical field and ionic current density; thus a nano-confinement for the oxygen vacancy distribution and nano-filament location is created by this approach. Conductive atomic force microscopy measurements confirm that the filaments form only on the nanotip region. Resistance switching by using pulses shows highly stable endurance for both ON and OFF modes, thanks to the geometric confinement of the conductive path and filament only above the nanotip. This nano-engineering approach opens a new pathway to realize forming-free RRAM devices with improved stability and reliability.
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