研究目的
To develop a switchable self-assembly method for manufacturing 3D nanogap plasmonic structures for localized sensing of anticancer medicines with microfluidic SERS.
研究成果
The developed switchable CFSA strategy provides a facile, effective, and controllable approach for creating nanogap enabled SERS devices in fluidic channels, advancing applications in precision medicine.
研究不足
The method may lack the ability to fabricate large-scale SERS substrates and may have limitations in integrating nanostructures in microfluidic channels with non-planar substrates.
1:Experimental Design and Method Selection:
A switchable self-assembly method combining supercritical drying and capillary-force driven self-assembly (CFSA) of micropillars fabricated by laser printing was developed.
2:Sample Selection and Data Sources:
Polymer pillars were fabricated on a glass slide by a typical 3D laser printing process.
3:List of Experimental Equipment and Materials:
A Ti:sapphire femtosecond laser system, SZ2080 photoresist, and an ion sputtering system for Au coating were used.
4:Experimental Procedures and Operational Workflow:
The polymer pillars were fabricated, coated with Au, and then assembled into nanogap structures via CFSA.
5:Data Analysis Methods:
SERS measurements were performed using a home-built Raman spectroscopy system.
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