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2-nm-Thick Indium Oxide Featuring High Mobility

journal contribution
posted on 2024-11-03, 09:03 authored by Kim Nguyen, Aishani Mazumder, Edwin Mayes, Vaishnavi Krishnamurthi, Ali Zavabeti, Billy Murdoch, Xiangyang Guo, Patjaree Aukarasereenont, Aditya Dubey, Azmira Jannat, Xiaotian WeiXiaotian Wei, Vi Khanh Truong, Lei BaoLei Bao, Ann Roberts, Christopher McConvilleChristopher McConville, Sumeet WaliaSumeet Walia, Nitu SyedNitu Syed, Torben DaenekeTorben Daeneke
Thin film transistors (TFTs) are key components for the fabrication of electronic and optoelectronic devices, resulting in a push for the wider exploration of semiconducting materials and cost-effective synthesis processes. In this report, a simple approach is proposed to achieve 2-nm-thick indium oxide nanosheets from liquid metal surfaces by employing a squeeze printing technique and thermal annealing at 250 °C in air. The resulting materials exhibit a high degree of transparency (>99 %) and an excellent electron mobility of ≈96 cm2 V−1 s−1, surpassing that of pristine printed 2D In2O3 and many other reported 2D semiconductors. UV-detectors based on annealed 2D In2O3 also benefit from this process step, with the photoresponsivity reaching 5.2 × 104 and 9.4 × 103 A W−1 at the wavelengths of 285 and 365 nm, respectively. These values are an order of magnitude higher than for as-synthesized 2D In2O3. Utilizing transmission electron microscopy with in situ annealing, it is demonstrated that the improvement in device performances is due to nanostructural changes within the oxide layers during annealing process. This work highlights a facile and ambient air compatible method for fabricating high-quality semiconducting oxides, which will find application in emerging transparent electronics and optoelectronics.

Funding

ARC Centre of Excellence in Future Low Energy Electronics Technologies

Australian Research Council

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Liquid metal chemistry towards grain boundary-free electronic materials

Australian Research Council

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History

Journal

Advanced Materials Interfaces

Volume

10

Number

2202036

Issue

9

Start page

1

End page

8

Total pages

8

Publisher

Wiley

Place published

Germany

Language

English

Copyright

© 2023 The Authors. Advanced Materials Interfaces published by Wiley-VCH GmbH. This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.

Former Identifier

2006122218

Esploro creation date

2023-05-13

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