Dual-gated single-molecule field-effect transistors beyond Moore’s law

Author:

Meng Linan,Xin Na,Hu Chen,Sabea Hassan Al,Zhang Miao,Jiang Hongyu,Ji Yiru,Jia Chuancheng,Yan ZhuangORCID,Zhang Qinghua,Gu LinORCID,He Xiaoyan,Selvanathan Pramila,Norel Lucie,Rigaut StéphaneORCID,Guo Hong,Meng ShengORCID,Guo XuefengORCID

Abstract

AbstractAs conventional silicon-based transistors are fast approaching the physical limit, it is essential to seek alternative candidates, which should be compatible with or even replace microelectronics in the future. Here, we report a robust solid-state single-molecule field-effect transistor architecture using graphene source/drain electrodes and a metal back-gate electrode. The transistor is constructed by a single dinuclear ruthenium-diarylethene (Ru-DAE) complex, acting as the conducting channel, connecting covalently with nanogapped graphene electrodes, providing field-effect behaviors with a maximum on/off ratio exceeding three orders of magnitude. Use of ultrathin high-k metal oxides as the dielectric layers is key in successfully achieving such a high performance. Additionally, Ru-DAE preserves its intrinsic photoisomerisation property, which enables a reversible photoswitching function. Both experimental and theoretical results demonstrate these distinct dual-gated behaviors consistently at the single-molecule level, which helps to develop the different technology for creation of practical ultraminiaturised functional electrical circuits beyond Moore’s law.

Funder

National Natural Science Foundation of China

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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