Self‐Assembly of Delta‐Formamidinium Lead Iodide Nanoparticles to Nanorods: Study of Memristor Properties and Resistive Switching Mechanism

Author:

Muthu Chinnadurai12ORCID,Resmi A. N.3,Ajayakumar Avija12,Ravindran N. E. Aswathi1,Dayal G.3,Jinesh K. B.3,Szaciłowski Konrad4ORCID,Vijayakumar Chakkooth12ORCID

Affiliation:

1. Chemical Sciences and Technology Division CSIR‐National Institute for Interdisciplinary Science and Technology (CSIR‐NIIST) Thiruvananthapuram 695 019 India

2. Academy of Scientific and Innovative Research (AcSIR) Ghaziabad 201 002 India

3. Department of Physics Indian Institute of Space Science and Technology (IIST) Thiruvananthapuram 695 547 India

4. Academic Centre for Materials and Nanotechnology AGH University of Krakow Mickiewicza 30 Krakow 30 059 Poland

Abstract

AbstractIn the quest for advanced memristor technologies, this study introduces the synthesis of delta‐formamidinium lead iodide (δ‐FAPbI3) nanoparticles (NPs) and their self‐assembly into nanorods (NRs). The formation of these NRs is facilitated by iodide vacancies, promoting the fusion of individual NPs at higher concentrations. Notably, these NRs exhibit robust stability under ambient conditions, a distinctive advantage attributed to the presence of capping ligands and a crystal lattice structured around face‐sharing octahedra. When employed as the active layer in resistive random‐access memory devices, these NRs demonstrate exceptional bipolar switching properties. A remarkable on/off ratio (105) is achieved, surpassing the performances of previously reported low‐dimensional perovskite derivatives and α‐FAPbI3 NP‐based devices. This enhanced performance is attributed to the low off‐state current owing to the reduced number of halide vacancies, intrinsic low dimensionality, and the parallel alignment of NRs on the FTO substrate. This study not only provides significant insights into the development of superior materials for memristor applications but also opens new avenues for exploring low‐dimensional perovskite derivatives in advanced electronic devices.

Funder

Department of Science and Technology, Government of Kerala

Council of Scientific and Industrial Research, India

University Grants Commission

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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