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Solution-processed diode-like ZnO nanoparticle device with tunable threshold voltage and super-nernstian ion sensitivity

Solution-processed diode-like ZnO nanoparticle device with tunable threshold voltage and super-nernstian ion sensitivity
Solution-processed diode-like ZnO nanoparticle device with tunable threshold voltage and super-nernstian ion sensitivity

This study introduces a fabrication method to produce a zinc oxide nanoparticles (ZnO NPs) diode-like interface device for sensing applications. This structure is achieved via the modulation of ionized oxygen molecules adsorbed on the surfaces of the ZnO NPs, distinguishing it from the conventional diode devices. The device exhibits an on/off ratio of 10 5 and features a tunable threshold voltage contingent upon varying surface charge conditions, positioning it as a promising candidate for high-sensitivity chip-level pH sensing applications. A highly sensitive pH sensor based on this interface is successfully fabricated using a fully solution-based process, excluding any high-temperature steps. As the pH value of the test solution decreases, the sensor demonstrates an increase in threshold voltage, achieving a super-Nernstian sensitivity of 360 ± 11 mV pH −1. The fabrication process reaches a maximum temperature of 120 °C and employs a UV-vacuum-heating (UVVH) technique. To maintain the electrical integrity of ZnO NPs, ethylene-vinyl alcohol (EVOH) is utilized to provide a protective, waterproof, and oxygen-barrier passivation layer. The operational behavior and diode-like characteristics of the sensor, attributes to ionized oxygen molecule adsorption on ZnO NPs, are accurately predicted using a combined adsorption isotherm and electrical model, aligning well with experimental results.

Zinc Oxide, ion adsorption and migration, ionized molecule, nanoparticles, pH sensor
1613-6810
Qu, Mengyang
111ae526-7a41-4ec2-96ac-f04e29a00c99
Dai, Huanghao
214c9368-7f1b-41c9-b3e9-5715d1ba21c5
Kapur, Omesh R.
2be52575-505f-472f-ad9c-ce6fe84c20fd
Beeby, Stephen P.
ba565001-2812-4300-89f1-fe5a437ecb0d
Chong, Harold M.H.
795aa67f-29e5-480f-b1bc-9bd5c0d558e1
Qu, Mengyang
111ae526-7a41-4ec2-96ac-f04e29a00c99
Dai, Huanghao
214c9368-7f1b-41c9-b3e9-5715d1ba21c5
Kapur, Omesh R.
2be52575-505f-472f-ad9c-ce6fe84c20fd
Beeby, Stephen P.
ba565001-2812-4300-89f1-fe5a437ecb0d
Chong, Harold M.H.
795aa67f-29e5-480f-b1bc-9bd5c0d558e1

Qu, Mengyang, Dai, Huanghao, Kapur, Omesh R., Beeby, Stephen P. and Chong, Harold M.H. (2025) Solution-processed diode-like ZnO nanoparticle device with tunable threshold voltage and super-nernstian ion sensitivity. Small, 21 (32), [2504332]. (doi:10.1002/smll.202504332).

Record type: Article

Abstract

This study introduces a fabrication method to produce a zinc oxide nanoparticles (ZnO NPs) diode-like interface device for sensing applications. This structure is achieved via the modulation of ionized oxygen molecules adsorbed on the surfaces of the ZnO NPs, distinguishing it from the conventional diode devices. The device exhibits an on/off ratio of 10 5 and features a tunable threshold voltage contingent upon varying surface charge conditions, positioning it as a promising candidate for high-sensitivity chip-level pH sensing applications. A highly sensitive pH sensor based on this interface is successfully fabricated using a fully solution-based process, excluding any high-temperature steps. As the pH value of the test solution decreases, the sensor demonstrates an increase in threshold voltage, achieving a super-Nernstian sensitivity of 360 ± 11 mV pH −1. The fabrication process reaches a maximum temperature of 120 °C and employs a UV-vacuum-heating (UVVH) technique. To maintain the electrical integrity of ZnO NPs, ethylene-vinyl alcohol (EVOH) is utilized to provide a protective, waterproof, and oxygen-barrier passivation layer. The operational behavior and diode-like characteristics of the sensor, attributes to ionized oxygen molecule adsorption on ZnO NPs, are accurately predicted using a combined adsorption isotherm and electrical model, aligning well with experimental results.

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Small - 2025 - Qu - Solution‐Processed Diode‐Like ZnO Nanoparticle Device with Tunable Threshold Voltage and - Version of Record
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Accepted/In Press date: 4 June 2025
Published date: 14 August 2025
Keywords: Zinc Oxide, ion adsorption and migration, ionized molecule, nanoparticles, pH sensor

Identifiers

Local EPrints ID: 503287
URI: http://eprints.soton.ac.uk/id/eprint/503287
ISSN: 1613-6810
PURE UUID: 76a6ec5e-f425-4125-a654-7972200a206f
ORCID for Mengyang Qu: ORCID iD orcid.org/0009-0003-3685-8658
ORCID for Huanghao Dai: ORCID iD orcid.org/0000-0002-3340-3944
ORCID for Stephen P. Beeby: ORCID iD orcid.org/0000-0002-0800-1759
ORCID for Harold M.H. Chong: ORCID iD orcid.org/0000-0002-7110-5761

Catalogue record

Date deposited: 28 Jul 2025 16:42
Last modified: 18 Sep 2025 02:02

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Contributors

Author: Mengyang Qu ORCID iD
Author: Huanghao Dai ORCID iD
Author: Omesh R. Kapur
Author: Stephen P. Beeby ORCID iD
Author: Harold M.H. Chong ORCID iD

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