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Artículo

On the thermal models for resistive random access memory circuit simulation

Roldán, Juan B.; González Cordero, Gerardo; Picos, Rodrigo; Miranda, Enrique; Palumbo, Félix Roberto MarioIcon ; Jiménez Molinos, Francisco; Moreno, Enrique; Maldonado, David; Baldomá, Santiago B.; Moner Al Chawa, Mohamad; de Benito, Carol; Stavrinides, Stavros G.; Suñé, Jordi; Chua, Leon O.
Fecha de publicación: 05/2021
Editorial: MDPI AG
Revista: Nanomaterials
ISSN: 2079-4991
Idioma: Inglés
Tipo de recurso: Artículo publicado
Clasificación temática:
Física de los Materiales Condensados

Resumen

Resistive Random Access Memories (RRAMs) are based on resistive switching (RS) operation and exhibit a set of technological features that make them ideal candidates for applications related to non-volatile memories, neuromorphic computing and hardware cryptography. For the full industrial development of these devices different simulation tools and compact models are needed in order to allow computer-aided design, both at the device and circuit levels. Most of the different RRAM models presented so far in the literature deal with temperature effects since the physical mechanisms behind RS are thermally activated; therefore, an exhaustive description of these effects is essential. As far as we know, no revision papers on thermal models have been pub-lished yet; and that is why we deal with this issue here. Using the heat equation as the starting point, we describe the details of its numerical solution for a conventional RRAM structure and, later on, present models of different complexity to integrate thermal effects in complete compact models that account for the kinetics of the chemical reactions behind resistive switching and the current calcu-lation. In particular, we have accounted for different conductive filament geometries, operation re-gimes, filament lateral heat losses, the use of several temperatures to characterize each conductive filament, among other issues. A 3D numerical solution of the heat equation within a complete RRAM simulator was also taken into account. A general memristor model is also formulated ac-counting for temperature as one of the state variables to describe electron device operation. In ad-dition, to widen the view from different perspectives, we deal with a thermal model contextualized within the quantum point contact formalism. In this manner, the temperature can be accounted for the description of quantum effects in the RRAM charge transport mechanisms. Finally, the ther-mometry of conducting filaments and the corresponding models considering different dielectric materials are tackled in depth.
Palabras clave: CIRCUIT SIMULATION , COMPACT MODELING , HEAT EQUATION , NANODEVICES , RESISTIVE MEMORIES , RESISTIVE SWITCHING , THERMAL CONDUCTIVITY , THERMAL MODEL
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info:eu-repo/semantics/openAccess Excepto donde se diga explícitamente, este item se publica bajo la siguiente descripción: Creative Commons Attribution 2.5 Unported (CC BY 2.5)
Identificadores
URI: http://hdl.handle.net/11336/165239
DOI: http://dx.doi.org/10.3390/nano11051261
Colecciones
Articulos(SEDE CENTRAL)
Articulos de SEDE CENTRAL
Citación
Roldán, Juan B.; González Cordero, Gerardo; Picos, Rodrigo; Miranda, Enrique; Palumbo, Félix Roberto Mario; et al.; On the thermal models for resistive random access memory circuit simulation; MDPI AG; Nanomaterials; 11; 5; 5-2021; 1-46
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