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Printable Single-Unit-Cell-Thick Transparent Zinc-Doped Indium Oxides with Efficient Electron Transport Properties

journal contribution
posted on 2024-11-02, 16:11 authored by Azmira Jannat, Nitu SyedNitu Syed, Kai Xu, Md. Ataur Rahman, Md. Talukder, Kibret Messalea, Md Mohiuddin, Robi Datta, Muhammad Waqas Khan, Turki Alkathiri, Billy Murdoch, Zahin Reza, Jing Li, Torben DaenekeTorben Daeneke, Ali ZavabetiAli Zavabeti, Jianzhen OuJianzhen Ou
Ultrathin transparent conductive oxides (TCOs) are emerging candidates for next-generation transparent electronics. Indium oxide (In2O3) incorporated with post-transition-metal ions (e.g., Sn) has been widely studied due to their excellent optical transparency and electrical conductivity. However, their electron transport properties are deteriorated at the ultrathin two-dimensional (2D) morphology compared to that of intrinsic In2O3. Here, we explore the domain of transition-metal dopants in ultrathin In2O3 with the thicknesses down to the single-unit-cell limit, which is realized in a large area using a low-temperature liquid metal printing technique. Zn dopant is selected as a representative to incorporate into the In2O3 rhombohedral crystal framework, which results in the gradual transition of the host to quasimetallic. While the optical transmittance is maintained above 98%, an electron field-effect mobility of up to 87 cm2 V-1 s-1 and a considerable sub-kω-1 cm-1 ranged electrical conductivity are achieved when the Zn doping level is optimized, which are in a combination significantly improved compared to those of reported ultrathin TCOs. This work presents various opportunities for developing high-performance flexible transparent electronics based on emerging ultrathin TCO candidates.

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

Related Materials

  1. 1.
    DOI - Is published in 10.1021/acsnano.0c06791
  2. 2.
    ISSN - Is published in 19360851

Journal

ACS Nano

Volume

15

Issue

3

Start page

4045

End page

4053

Total pages

9

Publisher

American Chemical Society

Place published

United States

Language

English

Copyright

© 2021 American Chemical Society.

Former Identifier

2006105555

Esploro creation date

2021-06-01

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