Hot plasmonic interactions: a new look at the photothermal efficacy of gold nanoparticles
- PMID: 20714596
- DOI: 10.1039/c0cp00499e
Hot plasmonic interactions: a new look at the photothermal efficacy of gold nanoparticles
Abstract
The photothermal (PT) outputs of individual gold nanoparticles (NP) were compared at room (cold) and high transient (hot) temperatures. High temperatures were induced in NPs by a single 0.5 ns laser pulse. All NPs with near-infrared plasmon resonances (rods, shells and bi-pyramids) exhibited a significant decrease in their photothermal output at the resonant wavelengths under high temperature, while non-resonant excitation of the same NPs provided several times higher PT efficacy of the hot NPs. This "inversion" of the PT efficacy of hot plasmonic NPs near their plasmon resonances might have been caused by damping of their resonances due to heating and surface melting. Therefore, photothermal output of plasmonic nanoparticles significantly depends upon their thermal state including the shift in excitation wavelength in hot nanoparticles. In particular, NPs with near-infrared resonances perform several times more efficiently at non-resonant excitation wavelengths rather than at the resonant ones.
Similar articles
-
Photothermal properties of gold nanoparticles under exposure to high optical energies.Nanotechnology. 2008 Sep 3;19(35):355702. doi: 10.1088/0957-4484/19/35/355702. Epub 2008 Jul 18. Nanotechnology. 2008. PMID: 21828856
-
Photothermal reshaping of gold nanoparticles in a plasmonic absorber.Opt Express. 2011 Jul 18;19(15):14726-34. doi: 10.1364/OE.19.014726. Opt Express. 2011. PMID: 21934835
-
Gold nanoframes: very high surface plasmon fields and excellent near-infrared sensors.J Am Chem Soc. 2010 Sep 15;132(36):12704-10. doi: 10.1021/ja104532z. J Am Chem Soc. 2010. PMID: 20722373
-
Gold nanostructures: engineering their plasmonic properties for biomedical applications.Chem Soc Rev. 2006 Nov;35(11):1084-94. doi: 10.1039/b517615h. Epub 2006 Sep 6. Chem Soc Rev. 2006. PMID: 17057837 Review.
-
Biomedical applications of plasmon resonant metal nanoparticles.Nanomedicine (Lond). 2006 Aug;1(2):201-8. doi: 10.2217/17435889.1.2.201. Nanomedicine (Lond). 2006. PMID: 17716109 Review.
Cited by
-
Transient enhancement and spectral narrowing of the photothermal effect of plasmonic nanoparticles under pulsed excitation.Adv Mater. 2013 Feb 6;25(5):772-6. doi: 10.1002/adma.201204083. Epub 2012 Nov 14. Adv Mater. 2013. PMID: 23161793 Free PMC article.
-
Effect of reducing agents on the synthesis of anisotropic gold nanoparticles.Nano Converg. 2022 Jan 17;9(1):5. doi: 10.1186/s40580-021-00296-1. Nano Converg. 2022. PMID: 35038061 Free PMC article.
-
Selective Photomechanical Detachment and Retrieval of Divided Sister Cells from Enclosed Microfluidics for Downstream Analyses.ACS Nano. 2017 May 23;11(5):4660-4668. doi: 10.1021/acsnano.7b00413. Epub 2017 May 8. ACS Nano. 2017. PMID: 28480715 Free PMC article.
-
Plasmonic nanobubbles as tunable cellular probes for cancer theranostics.Cancers (Basel). 2011 Feb 23;3(1):802-40. doi: 10.3390/cancers3010802. Cancers (Basel). 2011. PMID: 21442036 Free PMC article.
-
Gold nanoparticles in biology and medicine: recent advances and prospects.Acta Naturae. 2011 Apr;3(2):34-55. Acta Naturae. 2011. PMID: 22649683 Free PMC article.
Publication types
MeSH terms
Substances
Grants and funding
LinkOut - more resources
Full Text Sources
Miscellaneous