Unraveling Origin of Stochasticity in Multi-Filamentary Memristor
- Authors
- Soh, Keunho; Koo, Seunghoe; Yoon, Byoungjin; Kim, Ji Eun; Chun, Suk Yeop; Hwang, Su In; Jung, Junki; Jang, Ho Won; Hur, Sunghoon; Kim, Kyeongtae; Yoon, Jung Ho
- Issue Date
- 2026-01
- Publisher
- John Wiley & Sons Ltd.
- Citation
- Advanced Functional Materials
- Abstract
- Recent advances in computing including security applications, Monte Carlo simulations, and probabilistic computing, have increased the demand for robust probabilistic elements. Ion-motion-mediated volatile memristors with threshold switching (TS) characteristics have emerged as promising physical entropy sources because of their stochastic conductive filament (CF) formation and rupture. However, optimizing a memristor as an entropy source requires a material system that actively promotes ion motion and the associated CF formation/rupture, along with a quantitative understanding of their coupled electrothermal behavior. In this study, by integrating a porous nanorods (NRs)-based oxide layer that enhances ion-motion pathways, we achieved rapid, device-centric digital and analog random outputs without the need for post-processing. Moreover, we directly visualized the stochastic dynamics of multiple CFs using scanning thermal microscopy (SThM) and verified our findings through electrothermal simulations, confirming the device's inherent randomness. Finally, a bimodal (digital and analog) true random number generator (TRNG) and a probabilistic computing platform demonstrated the versatility of TS memristors as tunable and robust sources of randomness for probability-oriented applications.
- Keywords
- probabilistic computing; volatile memristor; joule heating; scanning thermal microscopy; true random number generator
- ISSN
- 1616-301X
- URI
- https://pubs.kist.re.kr/handle/201004/154099
- DOI
- 10.1002/adfm.202527482
- Appears in Collections:
- KIST Article > 2026
- Export
- RIS (EndNote)
- XLS (Excel)
- XML
Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.