研究目的
Investigating the effects of high-power laser processing on the chemical, physical, and structural properties of two-dimensional GaSe, and exploring its potential for creating laser-induced composites with added functionality.
研究成果
High-power laser processing of GaSe leads to material ablation and modification, resulting in the formation of nanoparticles with different electrical and optical properties. The study demonstrates the potential for creating laser-induced composites with added functionality, such as enhanced photocatalytic activity.
研究不足
The exact mechanism of nanoparticle formation and ruling out oxidation still elude us, suggesting the need for more sensitive analytical techniques such as micro-XPS with sufficient spatial resolution.
1:Experimental Design and Method Selection:
The study used a high-power laser to modify GaSe, with analyses conducted using AFM, DFM, SEM, and EDX to investigate the formation of nanoparticles and changes in properties.
2:Sample Selection and Data Sources:
A centimeter-sized GaSe single crystal grown by the Bridgman method was used as the source material.
3:List of Experimental Equipment and Materials:
Violet (CW) laser with a wavelength of 405 nm, 1 W power, and 20 μm spot width; Thermo Fisher Scientific DXR2 Raman microscope; NTEGRA NT-MDT AFM system; QUANTA 200 3D SEM.
4:Experimental Procedures and Operational Workflow:
The GaSe sample was prepared by fixing a micrometer thick layer on a glass with double-sided adhesive tape. Laser processing was performed in ambient conditions, followed by characterization using Raman spectroscopy, AFM, SEM, and EDX.
5:Data Analysis Methods:
Raman spectra were analyzed for changes in GaSe properties; AFM and SEM images were used to study morphology and nanoparticle formation; EDX was used for elemental analysis.
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