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基于横向并五苯/a-IGZO PN 结的高能效气体传感和突触二极管。

Power-Efficient Gas-Sensing and Synaptic Diodes Based on Lateral Pentacene/a-IGZO PN Junctions.

机构信息

College of Chemistry and Environmental Engineering, Shenzhen University, Shenzhen 518071, China.

College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.

出版信息

ACS Appl Mater Interfaces. 2022 Feb 23;14(7):9368-9376. doi: 10.1021/acsami.1c19771. Epub 2022 Feb 11.

DOI:10.1021/acsami.1c19771
PMID:35147029
Abstract

Function convergence of gas sensing and neuromorphic computing is attracting much research attention due to the promising potential in electronic olfactory, artificial intelligence, and internet of everything systems. However, the current neuromorphic gas-sensing systems are either realized via integration of gas detectors and neuromorphic devices or operating with three-terminal synaptic transistors at high voltages, leading to a rather high system complexity or power consumption. Herein, gas-modulated synaptic diodes with lateral structures are developed to converge sensing, processing, and storage functions into a single device. The lateral synaptic diode is based on a p-n junction of an organic semiconductor (OSC) and amorphous In-Ga-Zn-O, in which the upper OSC layer can directly interact with the gas molecules in the atmosphere. Typical synaptic behaviors triggered by ammonia, including inhibitory postsynaptic current and paired-pulse depression, are successfully demonstrated. Meanwhile, a low power consumption of 6.3 pJ per synaptic event has been achieved, which benefits from the simple device structure, the decent chemosensitivity of the OSC, and the low operation voltage. A simulated ammonia analysis in human exhaled breath is further conducted to explore the practical application of the synaptic diode. Therefore, this work provides a gas-modulated synaptic diode for circuit-compact and power-efficient artificial olfactory systems.

摘要

气体传感与神经形态计算的功能融合由于在电子嗅觉、人工智能和万物互联系统中具有广阔的应用前景而引起了广泛的研究关注。然而,目前的神经形态气体传感系统要么通过气体探测器和神经形态器件的集成来实现,要么在高电压下采用三端突触晶体管进行操作,这导致系统复杂性或功耗相当高。在此,开发了具有横向结构的气体调制突触二极管,将传感、处理和存储功能集成到单个器件中。横向突触二极管基于有机半导体(OSC)和非晶态 In-Ga-Zn-O 的 p-n 结,其中上 OSC 层可以直接与大气中的气体分子相互作用。成功演示了由氨气触发的典型突触行为,包括抑制性突触后电流和成对脉冲抑制。同时,通过采用简单的器件结构、OSC 良好的化学敏感性以及低操作电压,实现了 6.3pJ 每突触事件的低功耗。进一步对人体呼气中的氨气进行了模拟分析,以探索突触二极管的实际应用。因此,这项工作为电路紧凑、功耗高效的人工嗅觉系统提供了一种气体调制的突触二极管。

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