Enhanced resistive switching performance via air-stable FA3Sb2I9 thin films for flexible and multilevel memory applications

J Junjie Feng G Genquan Han Y Yuchan Wang (Tianjin Key Laboratory of Film Electronic and Communication Devices, School of Electronics Information Engineering, Tianjin University of Technology 3 , Tianjin 300384,) W Wei Hu Q Qiang Huang S Siming Tian (School of Integrated Circuits, Chongqing University of Posts and Telecommunications 1 , Chongqing 400065, and , Chongqing 400065,) S Shuo Cao N Nan Zhang W Wenxia Zhang X Xiaosheng Tang (School of Integrated Circuits, Chongqing University of Posts and Telecommunications 1 , Chongqing 400065, and , Chongqing 400065,)

Abstract

Organic–inorganic hybrid perovskites show promise for resistive random-access memory, especially antimony-based types due to their excellent optoelectronic properties and low toxicity. Herein, FA3Sb2I9 crystals were synthesized via the anti-solvent method and used to fabricate a memristor with the structure Ag/PMMA/FA3Sb2I9/ITO. The device demonstrates a low operating voltage, excellent endurance (>500 cycles), a high ON/OFF ratio (103), and robust retention (>104 s). It maintained stable electrical performance after more than 1 month of storage under ambient conditions. Moreover, the device shows multilevel resistive switching (RS) and maintains performance after 1000 bending cycles and various bending angles, demonstrating excellent mechanical flexibility. Density functional theory calculations reveal that the high stability originates from the strong Sb–I bonds in FA3Sb2I9. Analysis of the I–V characteristics further suggests that the RS is governed by the synergistic effect of Ag+ migration and iodine vacancies. This study presents a strategy to enhance the stability and enable high-density storage applications of halide perovskite RS memory devices.

Article Details

Volume / Issue Vol. 128, Issue 19
Published May 11, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (10)

J

Junjie Feng

G

Genquan Han

Y

Yuchan Wang

Tianjin Key Laboratory of Film Electronic and Communication Devices, School of Electronics Information Engineering, Tianjin University of Technology 3 , Tianjin 300384,

W

Wei Hu

Q

Qiang Huang

S

Siming Tian

School of Integrated Circuits, Chongqing University of Posts and Telecommunications 1 , Chongqing 400065, and , Chongqing 400065,

S

Shuo Cao

N

Nan Zhang

W

Wenxia Zhang

X

Xiaosheng Tang

School of Integrated Circuits, Chongqing University of Posts and Telecommunications 1 , Chongqing 400065, and , Chongqing 400065,