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涡轮层状多层石墨烯纳米带通道中场效应晶体管与互连应用的交叉点。

Crossover point of the field effect transistor and interconnect applications in turbostratic multilayer graphene nanoribbon channel.

作者信息

Negishi Ryota, Yamamoto Katsuma, Tanaka Hirofumi, Mojtahedzadeh Seyed Ali, Mori Nobuya, Kobayashi Yoshihiro

机构信息

Graduate School of Engineering, Osaka University, 2-1 Yamadaoka, Suita, Osaka, 565-0871, Japan.

Faculty of Science and of Engineering, Department of Electrical, Electronics and Communications Engineering, Toyo University, 2100 Kujirai, Kawagoe, Saitama, 350-8585, Japan.

出版信息

Sci Rep. 2021 May 13;11(1):10206. doi: 10.1038/s41598-021-89709-z.

Abstract

The electrical transport properties of a turbostratic multilayer graphene nanoribbon (GNR) with various number of layers (1-8 layers) were investigated using a field effect transistor with a single GNR channel. In the turbostratic multilayer GNR with 5 layers or less, the carrier mobility and I/I ratio in the FETs were improved by slightly increasing the conductance with increasing the number of layers, meaning that the excellent semiconducting characteristic. The improvement of the carrier transport properties promotes by the turbostratic stacking structure. In the turbostratic multilayer GNR with 6 layers or more, although the I/I ratio degraded, the conductance extremely improved with increasing the number of layers. This indicates that the turbostratic multilayer GNR with thicker number of layers becomes the significantly lower resistivity wire as a metallic characteristic. We revealed that the crossover point of the physical properties between the semiconducting and metallic characteristics is determined by the strength to screen the surrounding environment effects such as charged impurity on the substrate. Our comprehensive investigation provides a design guidance for the various electrical device applications of GNR materials.

摘要

使用具有单个石墨烯纳米带(GNR)通道的场效应晶体管,研究了具有不同层数(1 - 8层)的涡轮层状多层石墨烯纳米带的电输运特性。在5层及以下的涡轮层状多层GNR中,随着层数增加,场效应晶体管中的载流子迁移率和I/I比通过略微增加电导率而得到改善,这意味着具有优异的半导体特性。涡轮层状堆叠结构促进了载流子输运特性的改善。在6层及以上的涡轮层状多层GNR中,虽然I/I比下降,但随着层数增加,电导率极大地提高。这表明层数较多的涡轮层状多层GNR作为金属特性成为电阻率显著更低的导线。我们发现,半导体和金属特性之间物理性质的交叉点由屏蔽诸如衬底上带电杂质等周围环境效应的强度决定。我们的综合研究为GNR材料的各种电气设备应用提供了设计指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/01a9/8119723/58610e2f5e12/41598_2021_89709_Fig1_HTML.jpg

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