研究目的
Overcoming the low selectivity issue of semiconductor oxide (SMO)-based gas sensors at room temperature and realizing the accurate detection of trace disease biomarkers in exhaled breath.
研究成果
The GQD modified SMO with the hierarchical structure has a high potential in the non-invasive exhaled diagnosis, exhibiting a remarkably high response and rapid response/recovery time towards H2S gas.
研究不足
The technical and application constraints of the experiments, as well as potential areas for optimization, are not explicitly mentioned in the provided text.
1:Experimental Design and Method Selection:
A self-assembly strategy to create a graphene quantum dot (GQD) functionalized porous and hierarchical SnO2 quantum nanoparticles (SnO2QNP)/ZnO nanostructure.
2:Sample Selection and Data Sources:
Sensor device with interdigitated-finger arrays.
3:List of Experimental Equipment and Materials:
Metal zinc (Zn, >
4:99%), ammonia solution (NH3·H2O, 25%~28%), tin tetrachloride (SnCl4, >99%), sodium carboxymethyl cellulose (CMC, >98%), graphene quantum dot (GQD), hydrochloric acid (HCl, 37wt%). Experimental Procedures and Operational Workflow:
Preparation of ZnO Nanorods and GQD-SnO2/ZnO Nanosheets, gas-sensing tests at room temperature against 8 target gases.
5:Data Analysis Methods:
Principal component analysis (PCA) to analyze the sensing performance.
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Metal zinc
>99.99%
Sigma-Aldrich
Used as the target in the magnetron sputtering equipment for deposition.
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Ammonia solution
25%~28%
Sigma-Aldrich
Used in the hydrothermal synthesis of ZnO nanorods.
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Tin tetrachloride
>99%
Sigma-Aldrich
Precursor of SnO2 quantum nanoparticle (SnO2QNP).
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Sodium carboxymethyl cellulose
>98%
Alfa Aesar
Used in the hydrothermal synthesis of ZnO nanorods.
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Graphene quantum dot
XFNANO
Functional material applied in the sensing field.
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Hydrochloric acid
37wt%
Chinese Medicine Group Chemical Reagent
Used in the preparation of GQD-SnO2/ZnO nanosheets.
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