The Role of Tunneling Oxide in the Low Frequency Noise of Multi-level Silicon Nitride ReRAMs

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Vasileiadis, Nikolaos, Mavropoulis, Alexandros, Theodorou, Christoforos, Dimitrakis, Panagiotis
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866913681407737856
author Vasileiadis, Nikolaos
Mavropoulis, Alexandros
Theodorou, Christoforos
Dimitrakis, Panagiotis
author_facet Vasileiadis, Nikolaos
Mavropoulis, Alexandros
Theodorou, Christoforos
Dimitrakis, Panagiotis
contents This research explores the characteristics of two CMOS-compatible RRAM cells utilizing silicon nitride as the switching material. By employing SET/RESET pulse sequences, the study successfully attains four distinct and stable resistance states. To gain deeper insights, a Low-Frequency Noise (LFN) statistical analysis is conducted to investigate the role of a tunneling oxide between the bottom electrode and SiNx at various resistance levels. The findings from the LFN measurements strongly suggest that the multilevel high resistance switching primarily arises from variations in the number of nitrogen vacancies, which in turn modulate the conductivity of conductive filaments (CF). Notably, this modulation does not compromise the quality of the filament's surrounding interface. This research sheds light on the underlying mechanisms of RRAM cells and their potential for advanced memory applications.
format Preprint
id arxiv_https___arxiv_org_abs_2502_03912
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The Role of Tunneling Oxide in the Low Frequency Noise of Multi-level Silicon Nitride ReRAMs
Vasileiadis, Nikolaos
Mavropoulis, Alexandros
Theodorou, Christoforos
Dimitrakis, Panagiotis
Materials Science
Applied Physics
This research explores the characteristics of two CMOS-compatible RRAM cells utilizing silicon nitride as the switching material. By employing SET/RESET pulse sequences, the study successfully attains four distinct and stable resistance states. To gain deeper insights, a Low-Frequency Noise (LFN) statistical analysis is conducted to investigate the role of a tunneling oxide between the bottom electrode and SiNx at various resistance levels. The findings from the LFN measurements strongly suggest that the multilevel high resistance switching primarily arises from variations in the number of nitrogen vacancies, which in turn modulate the conductivity of conductive filaments (CF). Notably, this modulation does not compromise the quality of the filament's surrounding interface. This research sheds light on the underlying mechanisms of RRAM cells and their potential for advanced memory applications.
title The Role of Tunneling Oxide in the Low Frequency Noise of Multi-level Silicon Nitride ReRAMs
topic Materials Science
Applied Physics
url https://arxiv.org/abs/2502.03912