Physisorption-assistant optoelectronic synaptic transistors based on Ta2NiSe5/SnS2 heterojunction from ultraviolet to near-infrared

IF 23.4 Q1 OPTICS Light-Science & Applications Pub Date : 2025-03-17 DOI:10.1038/s41377-025-01792-3
Fan Tan, Chunlu Chang, Nan Zhang, Junru An, Mingxiu Liu, Xingyu Zhao, Mengqi Che, Zhilin Liu, Yaru Shi, Yahui Li, Yanze Feng, Chao Lin, Yuquan Zheng, Dabing Li, Mario Lanza, Shaojuan Li
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Abstract

Neuromorphic computing vision is the most promising technological solution to overcome the arithmetic bottleneck in machine vision applications. All-in-one neuromorphic sensors have been attracting increased attention because they can integrate visual perception, processing, and memory functionalities into one single device. However, the limited responsivity and data retention time of all-in-one neuromorphic sensors usually hinder their potential in multispectral machine vision, especially in the near-infrared (NIR) band which contains critical information for pattern recognition. Here, we demonstrate physisorption-assistant optoelectronic synaptic transistors based on Ta2NiSe5/SnS2 heterojunction, which present tunable synaptic functionality in broadband (375–1310 nm). We propose a strategy about the physisorption-assistant persistent photoconductivity (PAPPC) effect to effectively solve the problem in detecting and storing the NIR light information. Under this strategy, the responsivity and data retention time of our devices were significantly enhanced and prolonged in broadband from 375 to 1310 nm. Further, the devices realize multilevel non-volatile optoelectronic memory through the modulation of several optical and back-gate signals to simulate emotion-controlled learning and memory processes, optical writing-electric erasing, and associative learning. Moreover, we developed a simplified human visual system to simulate color-cognitive perception and memory functions. Our approach offers a route for creating advanced all-in-one neuromorphic sensors and developing neuromorphic computing vision.

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基于Ta2NiSe5/SnS2异质结的物理吸收辅助光电突触晶体管紫外至近红外
神经形态计算视觉是克服机器视觉应用中算法瓶颈最有前途的技术解决方案。一体化神经形态传感器因其能将视觉感知、处理和记忆功能整合到一个设备中而受到越来越多的关注。然而,一体化神经形态传感器有限的响应速度和数据保留时间限制了其在多光谱机器视觉领域的应用潜力,特别是在包含模式识别关键信息的近红外波段。在这里,我们展示了基于Ta2NiSe5/SnS2异质结的物理吸收辅助光电突触晶体管,该晶体管在宽带(375-1310 nm)范围内具有可调谐的突触功能。为了有效地解决近红外光信息的检测和存储问题,提出了一种物理吸附辅助持久光电导率(PAPPC)效应策略。在此策略下,我们的器件的响应性和数据保留时间显著增强,并在375到1310 nm的宽带范围内延长。此外,该器件通过调制多个光和后门信号来模拟情绪控制的学习和记忆过程、光写入电擦除和联想学习,从而实现多电平非易失性光电存储器。此外,我们开发了一个简化的人类视觉系统来模拟颜色认知感知和记忆功能。我们的方法为创造先进的一体化神经形态传感器和发展神经形态计算视觉提供了一条途径。
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来源期刊
Light-Science & Applications
Light-Science & Applications 数理科学, 物理学I, 光学, 凝聚态物性 II :电子结构、电学、磁学和光学性质, 无机非金属材料, 无机非金属类光电信息与功能材料, 工程与材料, 信息科学, 光学和光电子学, 光学和光电子材料, 非线性光学与量子光学
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