研究目的
To identify the dominant effect responsible for the improvement of electrical conductivity of the transparent AgNW:ZnO composite electrodes by fabricating the AgNW:ZnO composite electrodes with different architectures and theoretically calculating the overall resistance of their equivalent circuits.
研究成果
The electrical bridge effect is more important than the capillary force effect for increasing the electrical conductivity of AgNW:ZnO composite electrodes. The strategy to induce only the electrical bridge effect is more desirable for improving the electrical properties of the electrodes.
研究不足
The study focused on AgNW:ZnO composite electrodes and may not be directly applicable to other composite systems. The side effects of the capillary force effect, such as the introduction of an insulating capping layer, were identified as limitations.
1:Experimental Design and Method Selection:
The study involved fabricating AgNW:ZnO composite electrodes with different architectures to isolate the electrical bridge effect and the capillary force effect. Theoretical calculations of the overall resistance of their equivalent circuits were performed.
2:Sample Selection and Data Sources:
AgNW solutions were spin-coated on cleaned glass substrates to form networks. Sol-gel ZnO was prepared and used to form composite electrodes with different architectures.
3:List of Experimental Equipment and Materials:
FE-SEM for surface characterization, multimeter and 4-point probe for resistance measurements, spin-coater for sample preparation.
4:Experimental Procedures and Operational Workflow:
AgNW networks were formed on glass or ZnO-coated glass. ZnO was either beneath or atop the AgNW network to isolate the electrical bridge and capillary force effects. Resistance measurements were taken for each architecture.
5:Data Analysis Methods:
The overall resistances of the electrodes were compared to identify the dominant effect. Theoretical calculations based on equivalent circuits were used to support experimental findings.
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