Deterministic Patterning and Alignment of Tellurium Quantum Wires Using Nanoscale Templates

ABSTRACT Tellurium (Te) is an intriguing one‐dimensional (1D) semiconductor that has recently attracted considerable interest as a p ‐type channel material. However, scalable synthesis methods have lacked control over the orientation and patterning of the Te atomic chains, thus limiting its practical use. Guided by theory, we overcome this challenge using nanowire‐shaped templates to achieve oriented, single‐crystal growth of Te on amorphous substrates. Strong alignment of Te atomic chains is achieved as template widths are reduced to sub‐20 nm. This high structural order, confirmed by 4D scanning transmission electron microscopy, enables the observation of pristine quantum transport phenomena for deterministically patterned Te. Field‐effect transistors exhibit well‐defined conductance plateaus at 77 K due to the population of individual 1D subbands. Furthermore, Coulomb blockade emerges at 1.7 K, with the Te channel acting as a gate‐tunable quantum dot. This synthesis approach provides a scalable pathway for integration of Te‐based quantum materials for future electronic and quantum technologies.

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Publication Details

Journal
Advanced Materials
Published
2026-09-11
DOI
https://doi.org/10.1002/adma.75006
Primary Topic
2D Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Deterministic Patterning and Alignment of Tellurium Quantum Wires Using Nanoscale Templates

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Advanced Materials
2D Materials and Applications
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Deterministic Patterning and Alignment of Tellurium Quantum Wires Using Nanoscale Templates

Aditya Nirmale, D. C. Chrzan, Aidar Kemelbay, Hyong Min Kim, Joel W. Ager, Genki Ohkatsu, Naoki Higashitarumizu, Inha Kim, Taehoon Kim, Moniruzzaman Jamal, Karen C. Bustillo, Mary Scott, Scott Dhuey, Selven Virasawmy, Yutaka Majima, I K M Reaz Rahman, Ali Javey
article en

Abstract

ABSTRACT Tellurium (Te) is an intriguing one‐dimensional (1D) semiconductor that has recently attracted considerable interest as a p ‐type channel material. However, scalable synthesis methods have lacked control over the orientation and patterning of the Te atomic chains, thus limiting its practical use. Guided by theory, we overcome this challenge using nanowire‐shaped templates to achieve oriented, single‐crystal growth of Te on amorphous substrates. Strong alignment of Te atomic chains is achieved as template widths are reduced to sub‐20 nm. This high structural order, confirmed by 4D scanning transmission electron microscopy, enables the observation of pristine quantum transport phenomena for deterministically patterned Te. Field‐effect transistors exhibit well‐defined conductance plateaus at 77 K due to the population of individual 1D subbands. Furthermore, Coulomb blockade emerges at 1.7 K, with the Te channel acting as a gate‐tunable quantum dot. This synthesis approach provides a scalable pathway for integration of Te‐based quantum materials for future electronic and quantum technologies.

Advanced Materials
Tokyo Institute of Technology (JP), Lawrence Berkeley National Laboratory (US), Kavli Energy NanoScience Institute (US), University of California, Berkeley (US)
Core Research for Evolutional Science and Technology, Precursory Research for Embryonic Science and Technology
Openalex Percentile: Top 24%
2D Materials and Applications
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