Oxygen Vacancies Engineering in Thick Semiconductor Films via Deep Ultraviolet Photoactivation for Selective and Sensitive Gas Sensing

Author:

Abideen Zain Ul1ORCID,Choi Jun‐Gyu2,Yuwono Jodie A.345,Kiy Alexander6,Kumar Priyank Vijaya3,Murugappan Krishnan17,Lee Won‐June2,Kluth Patrick6,Nisbet David R.891011,Tran‐Phu Thanh1,Yoon Myung‐Han2,Tricoli Antonio112ORCID

Affiliation:

1. Nanotechnology Research Laboratory Research School of Chemistry College of Science Australian National University Canberra ACT 2601 Australia

2. School of Materials Science and Engineering Gwangju Institute of Science and Technology (GIST) Gwangju 61005 Republic of Korea

3. School of Chemical Engineering University of New South Wales (UNSW) Sydney 2052 Australia

4. College of Engineering, Computing and Cybernetics Australian National University Canberra ACT 2601 Australia

5. School of Chemical Engineering The University of Adelaide Adelaide 5000 Australia

6. Department of Materials Physics Research School of Physics Australian National University Canberra ACT 2601 Australia

7. CSIRO Mineral Resources Private Bag 10, Clayton South Victoria 3169 Australia

8. The Graeme Clark Institute The University of Melbourne Melbourne 3010 Australia

9. Laboratory of Advanced Biomaterials Research School of Chemistry and the John Curtin School of Medical Research the Australian National University Canberra ACT 2601 Australia

10. Department of Biomedical Engineering Faculty of Engineering and Information Technology The University of Melbourne Melbourne 3010 Australia

11. Melbourne Medical School Faculty of Medicine Dentistry and Health Science The University of Melbourne Melbourne 3010 Australia

12. Nanotechnology Research Laboratory Faculty of Engineering University of Sydney Sydney NSW 2006 Australia

Abstract

AbstractRoom‐temperature detection of volatile organic compounds in particle‐per‐billion concentrations is critical for the development of wearable and distributed sensor networks. However, sensitivity and selectivity are limited at low operating temperatures. Here, a strategy is proposed to substantially improve the performance of semiconductor sensors. Tunable oxygen vacancies in thick 3D networks of metal oxide nanoparticles are engineered using deep ultraviolet photoactivation. High selectivity and sensitivity are achieved by optimizing the electronic structure and surface activity while preserving the 3D morphology. Cross‐sectional depth analysis reveals oxygen vacancies present at various depths (≈24% at a depth of 1.13 µm), with a uniform distribution throughout the thick films. This results in ≈58% increase in the sensitivity of ZnO to 20‐ppb ethanol at room temperature while ≈51% and 64% decrease in the response and recovery times, respectively. At an operating temperature of 150 °C, oxygen‐vacant nanostructures achieve a lower limit of detection of 2 ppb. Density functional theory analysis shows that inducing oxygen vacancies reduces activation energy for ethanol adsorption and dissociation, leading to improved sensing performance. This scalable approach has the potential for designing low‐power wearable chemical and bio‐sensors and tuning the activity and band structure of porous, thick oxide films for multiple applications.

Funder

North Atlantic Treaty Organization

Australian Renewable Energy Agency

Publisher

Wiley

Subject

Electronic, Optical and Magnetic Materials

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