研究目的
To control laser modes and wavelength in a microcavity by manipulating the 3D-optical confinement, chirality, and orientations in a Fabry?Pérot microcavity with cholesteric liquid crystal droplets.
研究成果
The novel concept provides a simple yet highly versatile method to manipulate laser emissions and deepens insight into how molecules interact with and modulate laser light, laying the foundation for the development of tunable photonic devices at the molecular level.
研究不足
The ability to control both lasing spectra and laser modes in a microresonator remains challenging due to the lack of efficient mechanisms to overcome mode competitions.
1:Experimental Design and Method Selection:
The study involved manipulating the 3D-optical confinement, chirality, and orientations in a Fabry?Pérot microcavity with cholesteric liquid crystal droplets to control laser modes.
2:Sample Selection and Data Sources:
Cholesteric liquid crystal droplets with different configurations of micro-/nanostructures were used.
3:List of Experimental Equipment and Materials:
A Fabry?Pérot microcavity, cholesteric liquid crystal droplets, and various surface anchoring forces and pH interactions were utilized.
4:Experimental Procedures and Operational Workflow:
The study demonstrated switchable lasing wavelength with various surface anchoring forces and pH interactions.
5:Data Analysis Methods:
Theoretical analysis was carried out to support the discovery of single-mode lasing due to significantly reduced laser mode volume.
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