Perovskite Thin Single Crystal for a High Performance and Long Endurance Memristor

Author:

Fernandez‐Guillen Ismael1,Aranda Clara A.123ORCID,Betancur Pablo F.1,Vallés‐Pelarda Marta1,Momblona Cristina145,Ripolles Teresa S.1,Abargues Rafael1,Boix Pablo P.1

Affiliation:

1. Instituto de Ciencia de los Materiales de la Universidad de Valencia (ICMUV) Valencia 46980 Spain

2. Institute of Advanced Materials (INAM) University Jaume I Castellon 12006 Spain

3. Center for Nanoscience and Sustainable Technologies (CNATS) Department of Physical Chemical and Natural Systems Universidad Pablo de Olavide Seville 41013 Spain

4. Instituto de Nanociencia y Materiales de Aragón (INMA) CSIC‐Universidad de Zaragoza Department of Chemical and Environmental Engineering Campus Río Ebro‐Edificio I+D Universidad de Zaragoza C/ Mariano Esquillor S/N Zaragoza 50018 Spain

5. Centro de Investigación Biomédica en Red de Bioingeniería, Biomateriales y Nanomedicina Instituto de Salud Carlos III Zaragoza 50018 Spain

Abstract

AbstractMetal halide perovskites (MHPs) exhibit electronic and ionic characteristics suitable for memristors. However, polycrystalline thin film perovskite memristors often suffer from reliability issues due to grain boundaries, while bulk single‐crystal perovskite memristors struggle to achieve high LRS/HRS ratios. In this study, a single crystal memristive device utilizing a wide bandgap perovskite is introduced, MAPbBr3, in a high surface/thickness configuration. This thin single crystal overcomes these challenges, exhibiting a remarkable LRS/HRS ratio of up to 50 and endurance of 103 cycles, representing one of the highest reported values to date. This exceptional stability enables to analyze the electroforming process and LRS through impedance spectroscopy, providing insights into the underlying operational mechanism. As far as it is known, this is the first reported thin single‐crystal MHP memristor device and the first time that the electroforming process is recorded through impedance spectroscopy. This device's outstanding stability and performance position it as a promising candidate for high‐density data storage and neuromorphic applications.

Funder

Generalitat Valenciana

Conselleria de Cultura, Educación y Ciencia, Generalitat Valenciana

Ministerio de Ciencia e Innovación

H2020 European Institute of Innovation and Technology

Publisher

Wiley

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