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Microstructure and dynamics of vacancy-induced nanofilamentary switching network in donor doped SrTiO3-x memristors

journal contribution
posted on 2024-11-02, 02:30 authored by Hussein Nili Ahmadabadi, Taimur Ahmed, Sumeet WaliaSumeet Walia, Rajesh RamanathanRajesh Ramanathan, Ahmad Esmaiel Zadeh KandjaniAhmad Esmaiel Zadeh Kandjani, Sergey Rubanov, Jeeson Kim, Omid Kavehei, Vipul BansalVipul Bansal, Madhu BhaskaranMadhu Bhaskaran, Sharath SriramSharath Sriram
Donor doping of perovskite oxides has emerged as an attractive technique to create high performance and low energy non-volatile analog memories. Here, we examine the origins of improved switching performance and stable multi-state resistive switching in Nb-doped oxygen-deficient amorphous SrTiO3 (Nb:a-STO x ) metal-insulator-metal (MIM) devices. We probe the impact of substitutional dopants (i.e., Nb) in modulating the electronic structure and subsequent switching performance. Temperature stability and bias/time dependence of the switching behavior are used to ascertain the role of substitutional dopants and highlight their utility to modulate volatile and non-volatile behavior in a-STO x devices for adaptive and neuromorphic applications. We utilized a combination of transmission electron microscopy, photoluminescence emission properties, interfacial compositional evaluation, and activation energy measurements to investigate the microstructure of the nanofilamentary network responsible for switching. These results provide important insights into understanding mechanisms that govern the performance of donor-doped perovskite oxide-based memristive devices

Funding

Multilayer thin film memristors: designing interfaces and defect states in perovskites for nanoscale multi-state memories

Australian Research Council

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Foundations for Physically Unclonable nano-Security on Silicon

Australian Research Council

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Comprehensive Analysis Facility for Thin Films and Surfaces

Australian Research Council

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Melbourne Platform for Surface Characterisation of Structured Materials

Australian Research Council

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History

Related Materials

  1. 1.
    DOI - Is published in 10.1088/0957-4484/27/50/505210
  2. 2.
    ISSN - Is published in 09574484

Journal

Nanotechnology

Volume

27

Number

505210

Issue

50

Start page

1

End page

8

Total pages

8

Publisher

Institute of Physics Publishing

Place published

United Kingdom

Language

English

Copyright

© 2016 IOP Publishing

Former Identifier

2006068261

Esploro creation date

2020-06-22

Fedora creation date

2016-11-30

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