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Research Article | Open Access | Just Accepted

Suppressing trap density in carbon nanotube transistors via atomically smooth amorphous metal gates

Yi Yang1,2, Anqi Zheng3, Shangjing Yang3, Yuan Zhou1,2, Yujia Gong3, Yuan Kai3, Ke He3, Yi Li3, Yuting Zhang2, Yu Cao1,2,3, Xuelei Liang1,2,3, Yu Xia1,2,3, Lian-Mao Peng1,2,3, Jiahao Kang1,2,3( )

1 Institute of Advanced Functional Materials and Devices, Shanxi University, Taiyuan 030006, China

2 Institute for Carbon-Based Thin Film Electronics, Peking University, Shanxi (ICTFE-PKU), Taiyuan 030012, China

3 Research Center for Carbon-Based Electronics, School of Electronics, Peking University, Beijing 100871, China

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Abstract

Carbon nanotube-based (CNT-based) transistors are promising devices for next-generation electronic devices owing to their extraordinary electrostatics, high carrier mobility, and compatibility with low-temperature processing. However, in the widely used bottom-gate configuration, gate topography as a nanoscale physical parameter and its role in governing interfacial states and charge dynamics in carbon nanotube transistors remains insufficiently studied, despite its significant influence on interface charge trapping, hysteresis, bias-stress stability, and overall device performances. This work systematically investigates the role of gate topography by introducing an atomically smooth amorphous metal (ZrCuAlNi) as bottom-gate electrode, and comparing it with conventional polycrystalline metal gate. Owing to its homogeneous, grain-boundary-free microstructure, the amorphous metal gate enables the formation of a high-quality gate dielectric interface, which reduces the interface trap density by 39.27% in average and consequently lowers the device hysteresis voltage by about 50%, accompanied by improved carrier mobility, on-state current and bias stress stabilities, while maintaining the on/off ratio (>106). These results reveal that nanoscale gate surface morphology plays a critical role in regulating interfacial trap dynamics and charge transport in CNT transistors. The interface de-pinning mechanism demonstrated here with ultrasmooth gates is expected to be broadly applicable to other semiconductors. Consequently, this work provides both a specific material solution for stable CNT transistors and new insights into interface engineering strategies for carbon nanotube electronics and other carbon-based electronic devices.

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Cite this article:
Yang Y, Zheng A, Yang S, et al. Suppressing trap density in carbon nanotube transistors via atomically smooth amorphous metal gates. Nano Research, 2026, https://doi.org/10.26599/NR.2026.94909014
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Received: 06 April 2026
Revised: 18 June 2026
Accepted: 09 July 2026
Available online: 09 July 2026

© The Author(s) 2026. Published by Tsinghua University Press.

This is an open access article under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0, https://creativecommons.org/licenses/by/4.0/)