论文标题

基于COPT的电化学晶体管中电导率和磁性的突触调节

Synaptic modulation of conductivity and magnetism in a CoPt-based electrochemical transistor

论文作者

Li, Shengyao, Miao, Bojun, Wang, Xueyan, Teo, Siew Lang, Lin, Ming, Zhu, Qiang, Piramanayagam, S. N., Wang, X. Renshaw

论文摘要

在各种类型的神经形态朝向人工智能的装置中,电化学突触晶体管出现,其中通道电导是根据跨电解质的栅极电压史而通过离子插入的。尽管在探索新型通道材料方面取得了惊人的进展,但很少有研究报告对铁磁性金属的突触晶体管,从而限制了基于自旋的神经形态装置的发展。在这里,我们介绍了基于电化学晶体管具有铁磁性COPT合金金属通道的电导率和磁性的突触调节。我们首先证明了其在晶体管中必不可少的突触功能,包括抑郁症和突触体重增强以及配对脉冲的促进。然后,我们显示由不同的门参数(例如振幅,持续时间和频率)引起的短期至长期可塑性转变。此外,该设备在电导率和胁迫性中呈现多级和可逆的非易失性状态。结果证明了电导率和磁性的同时调节,为构建基于未来的基于自旋的多功能突触设备铺平了道路。

Among various types of neuromorphic devices towards artificial intelligence, the electrochemical synaptic transistor emerges, in which the channel conductance is modulated by the insertion of ions according to the history of gate voltage across the electrolyte. Despite the striking progress in exploring novel channel materials, few studies report on the ferromagnetic metal-based synaptic transistors, limiting the development of spin-based neuromorphic devices. Here, we present synaptic modulation of both conductivity as well as magnetism based on an electrochemical transistor with a metallic channel of ferromagnetic CoPt alloy. We first demonstrate its essential synaptic functionalities in the transistor, including depression and potentiation of synaptic weight, and paired-pulse facilitation. Then, we show a short- to long-term plasticity transition induced by different gate parameters, such as amplitude, duration, and frequency. Furthermore, the device presents multilevel and reversible nonvolatile states in both conductivity and coercivity. The results demonstrate simultaneous modulation of conductivity and magnetism, paving the way for building future spin-based multifunctional synaptic devices.

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