Simulation of neural functions based on organic semiconductor/MXene synaptic transistors

IF 2.7 4区 工程技术 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Organic Electronics Pub Date : 2024-07-06 DOI:10.1016/j.orgel.2024.107090
Hongying Qiu, Shuqiong Lan, Qiubao Lin, Huili Zhu, Wenliang Liao, Lan Yang
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Abstract

Artificial synaptic devices, which are the basic units of neuromorphic computing systems, can perform signal processing with low power consumption. Organic synaptic transistors have attracted significant attention owing to their lightweight and good compatibility with flexible substrates. As per the current state of research both domestically and internationally, the majority of the existing organic synaptic transistors are based on floating gate structures, electret configurations, ferroelectric types. Furthermore, additional capture layers are required for the preparation of these devices. Two-dimensional MXenes have great potential in the preparation of synaptic transistors owing to their efficient multiple energy storage capabilities, excellent metallic conductivity, abundant surface functional groups, hydrophilicity, and layered structure. Therefore, high-performance synaptic transistors based on the two-dimensional material MXene were developed in this study. These transistors not only exhibited excellent memory performance with a memory window above 20 V, but also successfully simulated typical synaptic behaviors, including excitatory postsynaptic current/inhibitory postsynaptic current (EPSC/IPSC), paired-pulse facilitation/paired-pulse depression (PPF/PPD), and long-term plasticity (LTP). Synaptic transistors based on MXenes represent a promising approach for the preparation of high-performance organic synaptic transistors.

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基于有机半导体/MXene 突触晶体管的神经功能模拟
人工突触器件是神经形态计算系统的基本单元,能以低功耗进行信号处理。有机突触晶体管因其重量轻、与柔性基板兼容性好而备受关注。根据国内外的研究现状,现有的有机突触晶体管大多基于浮动栅结构、驻极体配置和铁电类型。此外,制备这些器件还需要额外的俘获层。二维 MXenes 具有高效的多重储能能力、出色的金属导电性、丰富的表面官能团、亲水性和层状结构,因此在制备突触晶体管方面具有巨大潜力。因此,本研究开发了基于二维材料 MXene 的高性能突触晶体管。这些晶体管不仅具有出色的记忆性能,记忆窗口超过 20 V,而且成功模拟了典型的突触行为,包括兴奋性突触后电流/抑制性突触后电流(EPSC/IPSC)、成对脉冲促进/成对脉冲抑制(PPF/PPD)和长期可塑性(LTP)。基于 MXenes 的突触晶体管是制备高性能有机突触晶体管的一种很有前途的方法。
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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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