Anti‐Freezing Fiber‐Shaped Iontronic Synapses With Ultralow Energy Consumption and High Rectification

Y Yu Meng L Long Chen (Department of Chemistry, Frontiers Science Center for New Organic Matter and State Key Laboratory of Advanced Chemical Power Sources, College of Chemistry) S Siyuan Ye (Department of Electrical and Electronic Engineering, Southern University of Science and Technology 1 , Shenzhen 518055,) Y Yucheng Xie Z Zhanyong Wang (School of Materials Science and Engineering Shanghai Institute of Technology Shanghai China) Y Ying Jia J Jie Luo L Lei Wei (School of Physical Science and Technology, Shanghai Key Laboratory of High-Resolution Electron Microscopy, State Key Laboratory of Advanced Medical Materials and Devices) Q Qichong Zhang (Key Laboratory of Multifunctional Nanomaterials and Smart Systems, Suzhou Institute of Nano-Tech and Nano-Bionics)

Abstract

ABSTRACT Fiber‐shaped iontronic synapses (FEISs) are emerging as promising building blocks for next‐generation wearable neuromorphic computing due to their ability to emulate biological signal transmission and plasticity. However, their practical application remains limited by poor environmental adaptability, high energy consumption, and inadequate rectification behavior. Herein, we report a FEIS with anti‑freezing capability that simultaneously achieves ultralow energy consumption and a high rectification ratio. The FEIS is constructed by directly assembling tetrachlorobenzoquinone and zinc hexacyanoferrate onto carbon nanotube fibers via π–π stacking, combined with a sucrose‐modified polyacrylamide hydrogel electrolyte that inhibits ice formation through hydrogen bond regulation. Our FEIS exhibits stable synaptic operation at −20°C, with an ultralow energy consumption of 17 fJ per synaptic event, and a high rectification ratio of 17.9, enabled by asymmetric Faradaic reactions and ionic relaxation kinetics. These characteristics enable the FEIS to achieve robust unidirectional information transmission and stable synaptic operation, even under cryogenic conditions. Furthermore, the FEIS demonstrates reliable operation in ionic logic circuits and robotic control systems, achieving 95.2%‐digit recognition accuracy at −20°C. This work expands the operational boundaries of flexible iontronic neuromorphic devices for applications in extreme environments.

Article Details

Volume / Issue Vol. 38, Issue 47
Published August 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

Y

Yu Meng

L

Long Chen

Department of Chemistry, Frontiers Science Center for New Organic Matter and State Key Laboratory of Advanced Chemical Power Sources, College of Chemistry

S

Siyuan Ye

Department of Electrical and Electronic Engineering, Southern University of Science and Technology 1 , Shenzhen 518055,

Y

Yucheng Xie

Z

Zhanyong Wang

School of Materials Science and Engineering Shanghai Institute of Technology Shanghai China

Y

Ying Jia

J

Jie Luo

L

Lei Wei

School of Physical Science and Technology, Shanghai Key Laboratory of High-Resolution Electron Microscopy, State Key Laboratory of Advanced Medical Materials and Devices

Q

Qichong Zhang

Key Laboratory of Multifunctional Nanomaterials and Smart Systems, Suzhou Institute of Nano-Tech and Nano-Bionics