Nanoscale transistors require aggressive reduction of all channel dimensions: length, width, and thickness. While monolayer two-dimensional semiconductors (2DS) offer ultimate thickness scaling, good performance has largely been achieved only in micrometer-wide channels. Here, we demonstrate both n- and p-type nanoribbon transistors based on monolayer 2DS, fabricated using a multi-patterning process, reaching channel widths and lengths down to 25-30 nm. 'Anchored' contacts improve device yield, while nanoscale imaging, including tip-enhanced photoluminescence, reveals minimal edge degradation. The devices reach on-state currents up to 560, 420, and 130 μA μm−1 at 1 V drain-to-source voltage for n-type MoS2, WS2, and p-type WSe2, respectively, integrated with thin high-κ dielectrics. These results surpass prior reports for single-gated nanoribbons, the WS2 by over 100 times, even in normally-off (enhancement-mode) transistors. Taken together, these findings suggest that top down patterned 2DS nanoribbons are promising building blocks for future nanosheet transistors.
@article{arxiv.2509.09964,
title = {Scaling High-Performance Nanoribbon Transistors with Monolayer Transition Metal Dichalcogenides},
author = {Tara Peña and Anton E. O. Persson and Andrey Krayev and Áshildur Friðriksdóttir and Haotian Su and Yuan-Mau Lee and Young Suh Song and Kathryn Neilson and Zhepeng Zhang and Anh Tuan Hoang and Jerry A. Yang and Lauren Hoang and Shan X. Wang and Andrew J. Mannix and Paul C. McIntyre and Eric Pop},
journal= {arXiv preprint arXiv:2509.09964},
year = {2026}
}