Logo image
Enhanced Selectivity of Hydrogen Sulfide Gas by Hybrid Zeolitic Imidazolate Framework-67/2D Platinum Diselenide-Based Sensors Toward Wafer-Scale Production
期刊文章

Enhanced Selectivity of Hydrogen Sulfide Gas by Hybrid Zeolitic Imidazolate Framework-67/2D Platinum Diselenide-Based Sensors Toward Wafer-Scale Production

T.-W. Kuo, P.A.L. Sino, H.-F. Huang, R.-H. Guo, R.-H. Cyu, Y.-C. Hsu, Y.-H. Hong, F.-C. Chuang, H.-C. Kuo, H.-H. Chou, …
Small, 卷.22(21)
2026
Web of Science ID: WOS:001718993000001

摘要

density functional theory (DFT) gas sensor platinum Diselenide (PtSe<sub>2</sub>) zeolitic imidazolate framework-67 (ZIF-67) Chemical sensors Density of gases Gas adsorption Gas detectors Gas sensing electrodes Gases Hydrogen production Hydrogen sulfide Molecular sieves Platinum compounds Selenium compounds Thin films WSI circuits hydrogen sulfide platinum Density functional theory Density-functional-theory Diselenides Gas-sensors Layered thin films NH 3 Platinum diselenide (ptse2) Wafer scale Zeolitic imidazolate framework-67 Zeolitic imidazolate frameworks adsorption article controlled study density functional theory electric potential environmental monitoring gas high temperature humidity hybrid limit of detection pharmaceutics sensor Density functional theory
We developed a novel hybrid gas sensor by integrating zeolitic imidazolate framework-67 (ZIF-67) onto platinum diselenide (PtSe2) layered thin films, synthesized via a plasma-assisted selenization process. This approach addresses the critical challenge of scalability in 2D material-based sensors. By leveraging the distinct adsorption energies of gas molecules at the metal centers in ZIF-67, the sensors exhibited a significantly enhanced H2S response of up to 163% at 10 ppm and remarkable selectivity against NH3, achieving a response ratio (SH2S/SNH3) of 10.9. We calculated a theoretical limit of detection (LOD) of 12 ppb, demonstrating suitability for trace-level environmental monitoring. Long-term stability tests over a month demonstrated the superior stability of ZIF-67@PtSe2 layered films compared to pristine PtSe2, while maintaining robust performance under high-temperature and high-humidity conditions. Density functional theory (DFT) calculations revealed that ZIF-67 acts as a molecular sieve, selectively capturing H2S while hindering access to NH3, elucidating the underlying mechanism for the enhanced selectivity. Crucially, we successfully demonstrated the fabrication of a 4-inch wafer-scale device featuring a highly uniform ZIF-67@PtSe2 layered thin film that exhibited excellent gas-sensing performance. These results validate the feasibility and potential for large-scale, high-volume manufacturing of ZIF-67@PtSe2 sensors, bridging the gap between laboratory-scale devices and commercial applications. © 2026 Wiley-VCH GmbH.

檔案與連結 (1)

url
https://www.scopus.com/inward/record.uri?eid=2-s2.0-105033301201&doi=10.1002%2fsmll.202511890&partnerID=40&md5=1f3a8ba592db53c6e0edf884c6d47b89檢視

相關連結

指標

1 檢視次數

詳細資料

Logo image