Analysis and 3D modelling of percolated conductive networks in nanoparticle-based thin films

被引:0
|
作者
Haviar, Stanislav [1 ,2 ]
Prifling, Benedikt [3 ]
Kozak, Tomas [1 ,2 ]
Shaji, Kalyani [1 ,2 ]
Kosutova, Tereza [4 ]
Kos, Simon [1 ,2 ]
Schmidt, Volker [3 ]
Capek, Jiri [1 ,2 ]
机构
[1] Univ West Bohemia, Dept Phys, Univ 8, Plzen 30614, Czech Republic
[2] Univ West Bohemia, NTIS European Ctr Excellence, Univ 8, Plzen 30614, Czech Republic
[3] Ulm Univ, Inst Stochast, Helmholtzstr 18, D-89069 Ulm, Germany
[4] Charles Univ Prague, Fac Math & Phys, Dept Condensed Matter Phys, Ke Karlovu 5, Prague 12116, Czech Republic
来源
APPLIED SURFACE SCIENCE ADVANCES | 2025年 / 25卷
关键词
3D microstructure modelling; Nanoparticle-based thin films; Percolated conductive networks; Magnetron-based gas aggregation cluster source; Adsorption model; HYDROGEN SENSORS; GAS SENSORS; NANOSTRUCTURES;
D O I
10.1016/j.apsadv.2024.100689
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A methodology to model the percolated conductive network in nanoparticle-based thin films, synthesized by means of a magnetron-based gas aggregation source, was developed and validated. Two differently sized copper oxide nanoparticles were produced by varying the diameter of the exit orifice. Comprehensive characterization of these films was performed using scanning electron microscopy, transmission electron microscopy, small- angle X-ray scattering and X-ray diffraction to determine particle morphology, size distribution, porosity, vertical density profiles, and phase composition. Using the experimental data, virtual films were generated through a data-driven stochastic 3D microstructure model that is based on a sphere packing algorithm, where the particle size distribution, porosity and vertical density profile are taken into account. The generated 3D structures have been then refined to cover the effect of oxidation of as-deposited nanoparticles and non-zero roughness of real films. A computational model incorporating a simplified adsorption model was developed to simulate the effects of oxygen adsorption on the surface conductivity of the nanoparticles. Then, the electrical conductivity of the percolated networks in these virtual structures was computed using the finite element method for various partial oxygen pressures. Simulated resistivity values were compared with experimental measurements obtained from four-point probe resistivity measurements conducted under varying oxygen partial pressures at 150 degrees C A discussion of the validity of the model and its ability to cover qualitatively and quantitatively the observed behaviour is included.
引用
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页数:12
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