Oxygen vacancy effects in HfO2-based resistive switching memory: First principle study
Author(s) -
Yuehua Dai,
Zhiyong Pan,
Feifei Wang,
Xiaofeng Li
Publication year - 2016
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.4961229
Subject(s) - isosurface , orientation (vector space) , density functional theory , vacancy defect , resistive random access memory , materials science , conductor , condensed matter physics , oxygen , work (physics) , charge density , first principle , chemistry , geometry , thermodynamics , electrode , physics , computational chemistry , computer science , mathematics , composite material , organic chemistry , artificial intelligence , visualization , quantum mechanics
The work investigated the shape and orientation of oxygen vacancy clusters in HfO2-base resistive random access memory (ReRAM) by using the first-principle method based on the density functional theory. Firstly, the formation energy of different local Vo clusters was calculated in four established orientation systems. Then, the optimized orientation and charger conductor shape were identified by comparing the isosurface plots of partial charge density, formation energy, and the highest isosurface value of oxygen vacancy. The calculated results revealed that the [010] orientation was the optimal migration path of Vo, and the shape of system D4 was the best charge conductor in HfO2, which effectively influenced the SET voltage, formation voltage and the ON/OFF ratio of the device. Afterwards, the PDOS of Hf near Vo and total density of states of the system D4_010 were obtained, revealing the composition of charge conductor was oxygen vacancy instead of metal Hf. Furthermore, the migration barriers of the Vo hopping between neighboring unit cells were calculated along four different orientations. The motion was proved along [010] orientation. The optimal circulation path for Vo migration in the HfO2 super-cell was obtained
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