Reservoir computing for image processing based on ion-gated flexible organic transistors with nonlinear synaptic dynamics

IF 2.7 4区 工程技术 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Li Zhu , Xiang Wan , Junchen Lin , Pengyu Chen , Zhongzhong Luo , Huabin Sun , Shancheng Yan , Chee Leong Tan , Zhihao Yu , Yong Xu
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Abstract

Reservoir Computing (RC) is an efficient framework for processing sequential data. It captures the dynamic features of complex data through high-dimensional mapping, significantly enhancing machine learning capability. However, due to the lack of suitable materials and device fabrication processes, developing highly energy-efficient, flexible, and wearable RC systems remains a challenging task. In this paper, flexible ion-gated transistors were fabricated by spin-coating process at room temperature, utilizing polyimide (PI) as the flexible substrate, polyvinyl alcohol (PVA) doped with lithium perchlorate (LiClO4) as the gate dielectric, and poly[(bithiophene)-alternate-(2,5-di(2-octyldodecyl)-3,6-di(thienyl)-pyrrolyl pyrrolidone)] (DPPT-TT) as the organic semiconductor. Based on the electric double-layer (EDL) coupling in ion-gated transistors and the rich ionic dynamics, the device can simulate nonlinear synaptic functions such as excitatory postsynaptic current (EPSC), multi-pulse facilitation, and learning-forgetting-relearning behaviors. Based on the transistors’ nonlinear synaptic functions, the constructed RC system can enhance image features while reducing the image size by half, effectively extracting and amplifying hidden features in the original images. In the handwritten digit recognition task, the RC system improved the recognition rate from 79.8 % to 90.6 %, compared to an Artificial Neural Network (ANN) of the same scale. The effective combination of flexible organic ion-gated transistors and the RC framework will undoubtedly contribute to the further development of the next generation of wearable intelligent systems.

Abstract Image

基于非线性突触动力学的离子门控柔性有机晶体管图像处理库计算
储层计算(RC)是处理序列数据的有效框架。通过高维映射捕捉复杂数据的动态特征,显著增强机器学习能力。然而,由于缺乏合适的材料和设备制造工艺,开发高能效、柔性和可穿戴的RC系统仍然是一项具有挑战性的任务。本文以聚酰亚胺(PI)为柔性衬底,掺高氯酸锂(LiClO4)的聚乙烯醇(PVA)为栅极介质,聚[(二噻吩)-(2,5-二(2-辛基十二烷基)-3,6-二(噻吩)-吡罗烷酮)](DPPT-TT)为有机半导体,在室温下采用自旋镀膜工艺制备了柔性离子门控晶体管。该装置基于离子门控晶体管的双电层耦合和丰富的离子动力学特性,可以模拟突触的非线性功能,如兴奋性突触后电流(EPSC)、多脉冲促进和学习-遗忘-再学习行为。基于晶体管的非线性突触功能,构建的RC系统可以在将图像尺寸减小一半的同时增强图像特征,有效地提取和放大原始图像中的隐藏特征。在手写数字识别任务中,RC系统将识别率从79.8%提高到90.6%,与相同规模的人工神经网络(ANN)相比。柔性有机离子门控晶体管与RC框架的有效结合无疑将有助于下一代可穿戴智能系统的进一步发展。
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来源期刊
Organic Electronics
Organic Electronics 工程技术-材料科学:综合
CiteScore
6.60
自引率
6.20%
发文量
238
审稿时长
44 days
期刊介绍: Organic Electronics is a journal whose primary interdisciplinary focus is on materials and phenomena related to organic devices such as light emitting diodes, thin film transistors, photovoltaic cells, sensors, memories, etc. Papers suitable for publication in this journal cover such topics as photoconductive and electronic properties of organic materials, thin film structures and characterization in the context of organic devices, charge and exciton transport, organic electronic and optoelectronic devices.
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