4.8 Article

Two-Photon Induced Photoluminescence and Singlet Oxygen Generation from Aggregated Gold Nanoparticles

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 5, 期 11, 页码 4972-4977

出版社

AMER CHEMICAL SOC
DOI: 10.1021/am4007403

关键词

gold nanoparticles; plasmon coupling; two-photon excitation; singlet oxygen generation; two-photon photoluminescence

资金

  1. DSTA Singapore [DSTA-NUS-DIRP/9010100347]
  2. Singapore-MIT Alliance of Research and Technology (SMART) program
  3. Economic Development Board (SPORE) under National Research Foundation Singapore [COY-15-EWI-RCFSA/N197-1]

向作者/读者索取更多资源

Metal nanoparticles have potential applications as bioimaging and photosensitizing agents. Aggregation effects are generally believed to be adverse to their biomedical applications. Here we have studied the aggregation effects on two-photon induced photoluminescence and singlet oxygen generation of Au nanospheres and Au nanorods of two different aspect ratios. Aggregated Au nanospheres and short Au nanorods were found to display enhanced two-photon induced photoluminescence and singlet oxygen generation capabilities compared to the unaggregated ones. The two-photon photoluminescence of Au nanospheres and short Au nanorods were enhanced by up to 15.0- and 2.0-fold upon aggregation, and the corresponding two-photon induced singlet oxygen generation capabilities were enhanced by 8.3 and 1.8-fold, respectively. The two-photon induced photoluminescence and singlet oxygen generation of the aggregated long Au nanorods were found to be lower than the unaggregated ones. These results support that the change in their two-photon induced photolumniescence and singlet oxygen generation originate from aggregation modulated two-photon excitation efficiency. This finding is expected to foster more biomedical applications of metal nanoparticles as Au nanoparticles normally exist in an aggregated form in the biological environments. Considering their excellent biocompatibility, high inertness, ready conjugation, and easy preparation, Au nanoparticles are expected to find more applications in two-photon imaging and two-photon photodynamic therapy.

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