Dual‐State Programmable Oxide Transistor for Time‐Based Cryptography

ABSTRACT As conventional digital computing becomes increasingly constrained by scalability and energy‐efficiency limits, computing based on intrinsic physical dynamics of devices has emerged as a promising alternative. In this context, three‐terminal devices have attracted attention because their additional terminal offers greater flexibility for implementing higher‐order dynamics than two‐terminal devices. Here, we present a dual‐state programmable oxide transistor (DUPOT) that exhibits a previously unreported form of high‐dimensional dynamical behavior with both the threshold voltage ( V th ) and the saturation current ( I sat ) independently tunable. Additionally, the programmed V th state exhibits long‐term memory (LTM) characteristics, whereas the I sat state shows short‐term memory (STM) behavior, enabling more complex computing functionalities. We elucidate its operating mechanisms and demonstrate robustness, and further showcase its use in time‐based cryptography, which fully exploits its rich dynamical behavior. Our array‐level demonstration supports diverse forms of time‐based cryptography, including time‐release encryption and time‐bound encryption, and can be extended to cloud cryptographic systems, marking a new milestone in the study of computing devices with higher‐order dynamics.

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Publication Details

Journal
Advanced Materials
Published
2026-09-10
DOI
https://doi.org/10.1002/adma.74951
Primary Topic
Advanced Memory and Neural Computing
Type
article
Field-Weighted Citation Impact
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Dual‐State Programmable Oxide Transistor for Time‐Based Cryptography

M. Ko, Min Gu Lee, Sang‐Hee Ko Park, Jingyao Yu et al.
Advanced Materials
Advanced Memory and Neural Computing
article

Dual‐State Programmable Oxide Transistor for Time‐Based Cryptography

M. Ko, Min Gu Lee, Sang‐Hee Ko Park, Jingyao Yu, Himchan Cho, Hwayoung Kim, Kyung Min Kim, Taewook Go, Huisu Noh, Jungwan Noh
article en

Abstract

ABSTRACT As conventional digital computing becomes increasingly constrained by scalability and energy‐efficiency limits, computing based on intrinsic physical dynamics of devices has emerged as a promising alternative. In this context, three‐terminal devices have attracted attention because their additional terminal offers greater flexibility for implementing higher‐order dynamics than two‐terminal devices. Here, we present a dual‐state programmable oxide transistor (DUPOT) that exhibits a previously unreported form of high‐dimensional dynamical behavior with both the threshold voltage ( V th ) and the saturation current ( I sat ) independently tunable. Additionally, the programmed V th state exhibits long‐term memory (LTM) characteristics, whereas the I sat state shows short‐term memory (STM) behavior, enabling more complex computing functionalities. We elucidate its operating mechanisms and demonstrate robustness, and further showcase its use in time‐based cryptography, which fully exploits its rich dynamical behavior. Our array‐level demonstration supports diverse forms of time‐based cryptography, including time‐release encryption and time‐bound encryption, and can be extended to cloud cryptographic systems, marking a new milestone in the study of computing devices with higher‐order dynamics.

Advanced Materials
Korea Advanced Institute of Science and Technology (KR)
Affordable and clean energy
Openalex Percentile: Top 20%
Advanced Memory and Neural Computing
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Dual‐State Programmable Oxide Transistor for Time‐Based Cryptography — M. Ko, Min Gu Lee, et al. · Advanced Materials (2026) | TGRS Research Map | TGRS