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Selective hydrogen sensor with fast response/recovery time based on single ZnO/ZnAl2O4 nanowire

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dc.contributor.author LUPAN, C.
dc.contributor.author KOHLMANN, N.
dc.contributor.author PETERSEN, D.
dc.contributor.author BODDULURI, M. T.
dc.contributor.author BUZDUGAN, A.
dc.contributor.author JETTER, J.
dc.contributor.author QUANDT, E.
dc.contributor.author KIENLE, L.
dc.contributor.author ADELUNG, R.
dc.contributor.author LUPAN, O.
dc.date.accessioned 2026-10-08T16:32:25Z
dc.date.available 2026-10-08T16:32:25Z
dc.date.issued 2025
dc.identifier.citation LUPAN, C.; N. KOHLMANN; D. PETERSEN; M. T. BODDULURI; A. BUZDUGAN; J. JETTER; E. QUANDT; L. KIENLE; R. ADELUNG and O. LUPAN. Selective hydrogen sensor with fast response/recovery time based on single ZnO/ZnAl2O4 nanowire. In: ICPAM-17. 17th International Conference on Physics of Advanced Materials, Book of Abstracts, Hamamatsu, Japan, 16-23 November, 2025. Shizuoka University Hamamatsu. Hamamatsu: ICPAM, 2025, pp. 114-116. en_US
dc.identifier.uri https://repository.utm.md/handle/5014/37263
dc.description Cristian Lupan acknowledges the support from a grant of the Ministry of Research, Innovation and Digitalization, CNCS -UEFISCDI, project number PN-IV-P8-8.3-ROMD-2023-0060, within PNCDI IV and by the Romanian Ministry of Research, Innovation and Digitalization under the Romanian National Nucleu Program LAPLAS VII—contract no. 30N/2023. This study was partially supported by Moldova Government State Program LIFETECH, code 020404 at Technical University of Moldova. en_US
dc.description.abstract Hydrogen represents a promising candidate for the replacement of fossil fuels, which have a massive impact on the environment [1]. However, the reliable detection of hydrogen leaks remains challenging due to its intrinsic properties, underscoring the need for solid-state, portable, selective sensors with fast response/recovery time and high response value, working at low operating temperatures. Core ZnO nanowires were synthesized using flame transport synthesis method and covered with Al2O3 layers using atomic layer deposition method [1]. Afterwards, the obtained nanostructures were annealed at 975 °C. The morphological, chemical and structural study revealed the formation of ZnO/ZnAl2O4 nanowires after thermal annealing. Using FIB/SEM, individual core/shell nanowires were integrated into gas sensing devices (Fig. 1a). Multiple devices based on single ZnO/ZnAl2O4 nanowire were tested to a series of gases (hydrogen, methane, ethanol, acetone, n-propanol, 2-butanol and ammonia) with concentration of 100 ppm at different operating temperatures from room temperature up to 150 °C [1]. In Fig. 1b are presented results for a sensor based on ZnO/ZnAl2O4 nanowire, which demonstrated hydrogen selectivity, achieving a maximum response of ~913 at 100 °C and decreased with the increase of operating temperature to ~33 at 150 °C. The response and recovery time to 100 ppm hydrogen at 100 °C were ~6 s and ~1 s, respectively. en_US
dc.language.iso en en_US
dc.publisher Shizuoka University Hamamatsu en_US
dc.rights Attribution-NonCommercial-NoDerivs 3.0 United States *
dc.rights.uri http://creativecommons.org/licenses/by-nc-nd/3.0/us/ *
dc.subject hydrogen sensor en_US
dc.subject response time en_US
dc.subject single nanowire en_US
dc.title Selective hydrogen sensor with fast response/recovery time based on single ZnO/ZnAl2O4 nanowire en_US
dc.type Article en_US


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