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电动汽车驱动
★ 5.0
用于神经形态应用的电解质门控光电晶体管
Electrolyte-gated optoelectronic transistors for neuromorphic applications
| 作者 | Jinming Bi1Yanran Li1Rong Lu1Honglin Song1Jie Jiang2 |
| 期刊 | 半导体学报 |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 46 卷 第 2 期 |
| 技术分类 | 电动汽车驱动 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Jinming Bi Yanran Li Rong Lu Honglin Song Jie Jiang 半导体学报(英文版) Journal of Semiconductors |
语言:
中文摘要
传统冯·诺依曼架构在并行计算与自适应学习方面存在效率瓶颈,难以满足高效高速计算的需求。神经形态计算凭借高并行性与超低功耗的优势,被视为突破传统计算局限、实现下一代人工智能的重要途径。其中,基于电解质门控晶体管的人工突触器件因低能耗、多模态感知与多功能集成能力而备受关注。结合光子学与电子学优势的光电神经形态器件在该领域展现出巨大潜力。本文综述了电解质门控光电神经形态晶体管的最新进展,涵盖器件结构、工作机理、神经形态功能及其在人工视觉、痛觉与触觉系统中的应用,并总结了当前挑战与未来发展方向。
English Abstract
The traditional von Neumann architecture has demonstrated inefficiencies in parallel computing and adaptive learn-ing,rendering it incapable of meeting the growing demand for efficient and high-speed computing.Neuromorphic comput-ing with significant advantages such as high parallelism and ultra-low power consumption is regarded as a promising pathway to overcome the limitations of conventional computers and achieve the next-generation artificial intelligence.Among various neuromorphic devices,the artificial synapses based on electrolyte-gated transistors stand out due to their low energy consump-tion,multimodal sensing/recording capabilities,and multifunctional integration.Moreover,the emerging optoelectronic neuro-morphic devices which combine the strengths of photonics and electronics have demonstrated substantial potential in the neu-romorphic computing field.Therefore,this article reviews recent advancements in electrolyte-gated optoelectronic neuromor-phic transistors.First,it provides an overview of artificial optoelectronic synapses and neurons,discussing aspects such as device structures,operating mechanisms,and neuromorphic functionalities.Next,the potential applications of optoelectronic synapses in different areas such as artificial visual system,pain system,and tactile perception systems are elaborated.Finally,the current challenges are summarized,and future directions for their developments are proposed.
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SunView 深度解读
该电解质门控光电神经形态晶体管技术对阳光电源智能控制系统具有前瞻性启发价值。其低功耗、高并行计算特性可应用于:1)iSolarCloud智能运维平台的边缘计算节点,实现光伏阵列故障的实时神经形态诊断,降低云端算力依赖;2)ST储能系统的多模态传感融合,通过光电协同感知实现电池状态的自适应学习与预测性维护;3)电机驱动控制器的神经形态算法加速,优化MPPT与VSG控制的动态响应速度。虽当前技术成熟度尚需验证,但其超低功耗特性与多物理量感知能力为下一代分布式智能电力电子系统提供了新型硬件架构思路,值得跟踪其在工业级器件的发展进程。