Engineered high endurance in WO<sub>3</sub>-based resistive switching devices via a guided filament approach.

Yuan, Ziyi; Bakhit, Babak; Liu, Yi-Xuan; Sun, Zhuotong; I Lampronti, Giulio; Li, Xinjuan; Fairclough, Simon M; Tsai, Benson K et al. · Sci Adv · 2025

basic_science · Level V

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Abstract

Resistive switching devices are promising candidates for the next generation of nonvolatile memory and neuromorphic computing applications. Despite the advantages in retention and on/off ratio, filamentary-based memristors still suffer from challenges, particularly endurance (flash being a benchmark system showing 10<sup>4</sup> to 10<sup>6</sup> cycles) and uniformity. Here, we use WO<sub>3</sub> as a complementary metal-oxide semiconductor-compatible switching oxide and demonstrate a proof-of-concept materials design approach to enhance endurance and device-to-device uniformity in WO<sub>3</sub>-based memristive devices while preserving other performance metrics. These devices show stable resistive switching behavior with >10<sup>6</sup> cycles, >10<sup>5</sup>-second retention, >10 on/off ratio, and good device-to-device uniformity, without using current compliance. All these metrics are achieved using a one-step pulsed laser deposition process to create self-assembled nanocomposite thin films that have regular guided filaments of ≈100-nanometer pitch, preformed between WO<sub>3</sub> grains and interspersed smaller Ce<sub>2</sub>O<sub>3</sub> grains.