研究目的
To demonstrate the fabrication of all-2D material inkjet-printed capacitors using water-based and biocompatible graphene and hBN inks, and to explore their application in fully printed integrated circuits.
研究成果
The study successfully demonstrated the fabrication of all-2D material inkjet-printed capacitors with tunable capacitance, good dielectric strength, and compatibility with flexible substrates. These capacitors were integrated into fully printed demonstrators, showing potential for use in wearable and flexible electronics.
研究不足
The yield of functional devices was dependent on the overlap area, with an average yield of 62%. The dielectric constant of printed hBN films was higher than that of bulk hBN, possibly due to the chemical composition and morphology of the films.
1:Experimental Design and Method Selection:
The study utilized inkjet printing to fabricate capacitors with graphene electrodes and hBN dielectric. The method selection was based on the need for cost-effectiveness, design flexibility, and compatibility with flexible substrates.
2:Sample Selection and Data Sources:
Graphene and hBN inks were prepared using liquid-phase exfoliation. The substrates used were glass slides for capacitors and paper for field-effect transistors.
3:List of Experimental Equipment and Materials:
A Dimatix DMP-2800 inkjet printer, Bruker Dektak XT Stylus Profiler, HP 4284A Precision LCR meter, and Keithley 4200 Semiconductor Characterization System were used. Materials included graphene and hBN inks, glass slides, and paper substrates.
4:Experimental Procedures and Operational Workflow:
The capacitors were fabricated by sequentially printing graphene bottom electrode, hBN dielectric, and graphene top electrode. The devices were annealed under vacuum after each layer deposition.
5:Data Analysis Methods:
Capacitance and impedance measurements were performed using an LCR meter. The dielectric constant and breakdown field were calculated from the measurements.
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