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宽禁带 AlN 人工光子突触器件中的加速学习:对抑制浅陷阱能级的影响。

Accelerated Learning in Wide-Band-Gap AlN Artificial Photonic Synaptic Devices: Impact on Suppressed Shallow Trap Level.

机构信息

Department of Materials Science and Engineering, Inha University, 100 Inha-ro, Michuhol-gu, Incheon 22212, Republic of Korea.

Department of Advanced Material Engineering, Chungbuk National University, 1 Chungdae-ro, Seowon-gu, Cheongju, Chungbuk 28644, Republic of Korea.

出版信息

Nano Lett. 2021 Sep 22;21(18):7879-7886. doi: 10.1021/acs.nanolett.1c01885. Epub 2021 Jul 30.

Abstract

Artificial synaptic platforms are promising for next-generation semiconductor computing devices; however, state-of-the-art optoelectronic approaches remain challenging, owing to their unstable charge trap states and limited integration. We demonstrate wide-band-gap (WBG) III-V materials for photoelectronic neural networks. Our experimental analysis shows that the enhanced crystallinity of WBG synapses promotes better synaptic characteristics, such as effective multilevel states, a wider dynamic range, and linearity, allowing the better power consumption, training, and recognition accuracy of artificial neural networks. Furthermore, light-frequency-dependent memory characteristics suggest that artificial optoelectronic synapses with improved crystallinity support the transition from short-term potentiation to long-term potentiation, implying a clear emulation of the psychological multistorage model. This is attributed to the charge trapping in deep-level states and suppresses fast decay and nonradiative recombination in shallow traps. We believe that the fingerprints of these WBG synaptic characteristics provide an effective strategy for establishing an artificial optoelectronic synaptic architecture for innovative neuromorphic computing.

摘要

人工突触平台有望成为下一代半导体计算设备;然而,由于其不稳定的电荷俘获态和有限的集成度,最先进的光电方法仍然具有挑战性。我们展示了用于光电神经网络的宽带隙 (WBG) III-V 材料。我们的实验分析表明,WBG 突触的增强结晶度促进了更好的突触特性,例如有效的多级状态、更宽的动态范围和线性度,从而可以更好地消耗功率、训练和识别人工神经网络的准确性。此外,光频相关的记忆特性表明,结晶度提高的人工光电突触支持从短期增强到长期增强的转变,这意味着对心理多存储模型的清晰模拟。这归因于深能级中的电荷俘获,并抑制了浅陷阱中的快速衰减和非辐射复合。我们相信,这些 WBG 突触特性的特征为建立用于创新神经形态计算的人工光电突触架构提供了一种有效的策略。

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