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Advances of RRAM Devices: Resistive Switching Mechanisms, Materials and Bionic Synaptic Application

Resistive random access memory (RRAM) devices are receiving increasing extensive attention due to their enhanced properties such as fast operation speed, simple device structure, low power consumption, good scalability potential and so on, and are currently considered to be one of the next-generatio...

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Autores principales: Shen, Zongjie, Zhao, Chun, Qi, Yanfei, Xu, Wangying, Liu, Yina, Mitrovic, Ivona Z., Yang, Li, Zhao, Cezhou
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7466260/
https://www.ncbi.nlm.nih.gov/pubmed/32717952
http://dx.doi.org/10.3390/nano10081437
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author Shen, Zongjie
Zhao, Chun
Qi, Yanfei
Xu, Wangying
Liu, Yina
Mitrovic, Ivona Z.
Yang, Li
Zhao, Cezhou
author_facet Shen, Zongjie
Zhao, Chun
Qi, Yanfei
Xu, Wangying
Liu, Yina
Mitrovic, Ivona Z.
Yang, Li
Zhao, Cezhou
author_sort Shen, Zongjie
collection PubMed
description Resistive random access memory (RRAM) devices are receiving increasing extensive attention due to their enhanced properties such as fast operation speed, simple device structure, low power consumption, good scalability potential and so on, and are currently considered to be one of the next-generation alternatives to traditional memory. In this review, an overview of RRAM devices is demonstrated in terms of thin film materials investigation on electrode and function layer, switching mechanisms and artificial intelligence applications. Compared with the well-developed application of inorganic thin film materials (oxides, solid electrolyte and two-dimensional (2D) materials) in RRAM devices, organic thin film materials (biological and polymer materials) application is considered to be the candidate with significant potential. The performance of RRAM devices is closely related to the investigation of switching mechanisms in this review, including thermal-chemical mechanism (TCM), valance change mechanism (VCM) and electrochemical metallization (ECM). Finally, the bionic synaptic application of RRAM devices is under intensive consideration, its main characteristics such as potentiation/depression response, short-/long-term plasticity (STP/LTP), transition from short-term memory to long-term memory (STM to LTM) and spike-time-dependent plasticity (STDP) reveal the great potential of RRAM devices in the field of neuromorphic application.
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spelling pubmed-74662602020-09-14 Advances of RRAM Devices: Resistive Switching Mechanisms, Materials and Bionic Synaptic Application Shen, Zongjie Zhao, Chun Qi, Yanfei Xu, Wangying Liu, Yina Mitrovic, Ivona Z. Yang, Li Zhao, Cezhou Nanomaterials (Basel) Review Resistive random access memory (RRAM) devices are receiving increasing extensive attention due to their enhanced properties such as fast operation speed, simple device structure, low power consumption, good scalability potential and so on, and are currently considered to be one of the next-generation alternatives to traditional memory. In this review, an overview of RRAM devices is demonstrated in terms of thin film materials investigation on electrode and function layer, switching mechanisms and artificial intelligence applications. Compared with the well-developed application of inorganic thin film materials (oxides, solid electrolyte and two-dimensional (2D) materials) in RRAM devices, organic thin film materials (biological and polymer materials) application is considered to be the candidate with significant potential. The performance of RRAM devices is closely related to the investigation of switching mechanisms in this review, including thermal-chemical mechanism (TCM), valance change mechanism (VCM) and electrochemical metallization (ECM). Finally, the bionic synaptic application of RRAM devices is under intensive consideration, its main characteristics such as potentiation/depression response, short-/long-term plasticity (STP/LTP), transition from short-term memory to long-term memory (STM to LTM) and spike-time-dependent plasticity (STDP) reveal the great potential of RRAM devices in the field of neuromorphic application. MDPI 2020-07-23 /pmc/articles/PMC7466260/ /pubmed/32717952 http://dx.doi.org/10.3390/nano10081437 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Shen, Zongjie
Zhao, Chun
Qi, Yanfei
Xu, Wangying
Liu, Yina
Mitrovic, Ivona Z.
Yang, Li
Zhao, Cezhou
Advances of RRAM Devices: Resistive Switching Mechanisms, Materials and Bionic Synaptic Application
title Advances of RRAM Devices: Resistive Switching Mechanisms, Materials and Bionic Synaptic Application
title_full Advances of RRAM Devices: Resistive Switching Mechanisms, Materials and Bionic Synaptic Application
title_fullStr Advances of RRAM Devices: Resistive Switching Mechanisms, Materials and Bionic Synaptic Application
title_full_unstemmed Advances of RRAM Devices: Resistive Switching Mechanisms, Materials and Bionic Synaptic Application
title_short Advances of RRAM Devices: Resistive Switching Mechanisms, Materials and Bionic Synaptic Application
title_sort advances of rram devices: resistive switching mechanisms, materials and bionic synaptic application
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7466260/
https://www.ncbi.nlm.nih.gov/pubmed/32717952
http://dx.doi.org/10.3390/nano10081437
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