4.6 Article

Surface Plasmon Enhanced Fluorescence Temperature Mapping of Aluminum Nanoparticle Heated by Laser

期刊

SENSORS
卷 21, 期 5, 页码 -

出版社

MDPI
DOI: 10.3390/s21051585

关键词

nanothermography; fluorescence; plasmonic; aluminum nanoparticle

资金

  1. Army Research Office, Department of Defense, USA

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Partially aggregated Rhodamine 6G (R6G) dye is utilized as a lights-on temperature sensor to analyze the spatiotemporal heating of aluminum nanoparticles (Al NPs) embedded within a tetrafluoroethylene, hexafluoropropylene, and vinylidene fluoride (THV) fluoropolymer matrix. The use of a plasmonic grating substrate enhances the florescence intensity of the dye while improving optical resolution and heating rate of Al NPs, providing robust temperature sensing with sub-micron spatial resolution and temperature resolution on the order of 0.2 degrees C.
Partially aggregated Rhodamine 6G (R6G) dye is used as a lights-on temperature sensor to analyze the spatiotemporal heating of aluminum nanoparticles (Al NPs) embedded within a tetrafluoroethylene, hexafluoropropylene, and vinylidene fluoride (THV) fluoropolymer matrix. The embedded Al NPs were photothermally heated using an IR laser, and the fluorescent intensity of the embedded dye was monitored in real time using an optical microscope. A plasmonic grating substrate enhanced the florescence intensity of the dye while increasing the optical resolution and heating rate of Al NPs. The fluorescence intensity was converted to temperature maps via controlled calibration. The experimental temperature profiles were used to determine the Al NP heat generation rate. Partially aggregated R6G dyes, combined with the optical benefits of a plasmonic grating, offered robust temperature sensing with sub-micron spatial resolution and temperature resolution on the order of 0.2 degrees C.

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