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Voltage-Free Flexoelectric Gating of α-In2Se3-Based Optoelectronic Synapses for Enhanced Visual Memory Applications

  • Zian Hong
  • , Hongli Chen
  • , Jianing Wang
  • , Zhaotan Gao
  • , Yafang Li
  • , Kai Jiang
  • , Liyan Shang
  • , Jinzhong Zhang
  • , Liangqing Zhu
  • , Yawei Li
  • , Zhigao Hu*
  • *此作品的通讯作者
  • East China Normal University
  • Shanghai Dianji University
  • Shanxi University

科研成果: 期刊稿件文章同行评审

摘要

Flexoelectricity refers to the generation of electric polarization by strain gradients, enabling voltage-free modulation of material properties. This effect is particularly pronounced in two-dimensional (2D) materials due to their atomic-scale thickness and mechanical flexibility. Here, suspended (Formula presented.) - (Formula presented.) nanosheets are engineered via substrate patterning to establish lithographically defined flexoelectric fields, enabling the modulation of optoelectronic synaptic behavior. By transferring the (Formula presented.) - (Formula presented.) nano-structures onto pre-patterned substrates, suspended structures with geometries designed to introduce localized bending are constructed, leading to strain-gradient-induced polarization with well-defined spatial distribution. Compared to flat counterparts, suspended devices exhibit enhanced conductivity and a remarkable transition from long-term potentiation (LTP) to long-term depression (LTD) under optical stimulation, outperforming the effects induced by applying a (Formula presented.) gate bias or a (Formula presented.) gate-pulse-driven ferroelectric polarization. Flexoelectric gating thus enables voltage-free control of synaptic plasticity, offering long-term retention and geometry-defined tunability. Furthermore, spatial integration of LTP and LTD supports contrast-enhanced memory functions, mimicking sharpening mechanisms in biological visual systems. The present work establishes a programmable neuromorphic optoelectronic platform for energy-efficient implementation of 2D synaptic networks.

源语言英语
文章编号e25617
期刊Advanced Functional Materials
36
33
DOI
出版状态已出版 - 23 4月 2026

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