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Integrated 1D epitaxial mirror twin boundaries for ultrascaled 2D MoS2field-effect transistors

Authors :
Ahn, Heonsu
Moon, Gunho
Jung, Hang-gyo
Deng, Bingchen
Yang, Dong-Hwan
Yang, Sera
Han, Cheolhee
Cho, Hyunje
Yeo, Youngki
Kim, Cheol-Joo
Yang, Chan-Ho
Kim, Jonghwan
Choi, Si-Young
Park, Hongkun
Jeon, Jongwook
Park, Jin-Hong
Jo, Moon-Ho
Source :
Nature Nanotechnology; 20240101, Issue: Preprints p1-7, 7p
Publication Year :
2024

Abstract

In atomically thin van der Waals materials, grain boundaries—the line defects between adjacent crystal grains with tilted in-plane rotations—are omnipresent. When the tilting angles are arbitrary, the grain boundaries form inhomogeneous sublattices, giving rise to local electronic states that are not controlled. Here we report on epitaxial realizations of deterministic MoS2mirror twin boundaries (MTBs) at which two adjoining crystals are reflection mirroring by an exactly 60° rotation by position-controlled epitaxy. We showed that these epitaxial MTBs are one-dimensionally metallic to a circuit length scale. By utilizing the ultimate one-dimensional (1D) feature (width ~0.4 nm and length up to a few tens of micrometres), we incorporated the epitaxial MTBs as a 1D gate to build integrated two-dimensional field-effect transistors (FETs). The critical role of the 1D MTB gate was verified to scale the depletion channel length down to 3.9 nm, resulting in a substantially lowered channel off-current at lower gate voltages. With that, in both individual and array FETs, we demonstrated state-of-the-art performances for low-power logics. The 1D epitaxial MTB gates in this work suggest a novel synthetic pathway for the integration of two-dimensional FETs—that are immune to high gate capacitance—towards ultimate scaling.

Details

Language :
English
ISSN :
17483387 and 17483395
Issue :
Preprints
Database :
Supplemental Index
Journal :
Nature Nanotechnology
Publication Type :
Periodical
Accession number :
ejs66836669
Full Text :
https://doi.org/10.1038/s41565-024-01706-1