Gold@Silver@Gold Core Double-Shell Nanoparticles: Synthesis and Aggregation-Enhanced Two-Photon Photoluminescence Evaluation

被引:0
作者
Shervin Daneshvar e Asl
Sayed Khatiboleslam Sadrnezhaad
机构
[1] Sharif University of Technology,Department of Materials Science and Engineering
[2] National University of Singapore,Department of Chemistry
来源
Plasmonics | 2020年 / 15卷
关键词
Gold@silver@gold; Core double-shell; Localized surface plasmon resonance; Two-photon photoluminescence; Plasmon coupling;
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中图分类号
学科分类号
摘要
A facile, straightforward, and low-cost method is proposed to synthesize gold@silver@gold core double-shell nanoparticles. The technique is a seed-mediated growth protocol that contains four steps of (1) gold seed synthesis, (2) gold seed growth, (3) silver layer coating through silver salt reduction, and (4) gold layer deposition via gold precursor reduction. The prepared nanoparticles had a narrow size distribution and the average particle size of 28 ± 1 nm. Cysteine was introduced to the nanoparticles solution as a coupling agent to assemble nanoparticles. Aggregation-induced two-photon photoluminescence enhancement of three types assembled nanoparticles, i.e., gold@silver@gold, gold@silver, and gold nanoparticles, was studied. It was observed that the assembled core double-shell nanoparticles presented huge enhancement in two-photon photoluminescence signal in comparison with two other nanoparticles. Moreover, the gold@silver@gold nanoparticle is a stable and biocompatible plasmonic nanosystem. This paper provides a novel candidate for two-photon photoluminescence excitation sensing and imaging for biomedical applications.
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页码:409 / 416
页数:7
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共 218 条
  • [1] Sepúlveda B(2009)LSPR-based nanobiosensors Nano Today 4 244-251
  • [2] Angelomé PC(2008)Nanoshell-enabled photothermal cancer therapy: impending clinical impact Acc Chem Res 41 1842-1851
  • [3] Lechuga LM(2014)Plasmon-induced hot-electron generation at nanoparticle/metal-oxide interfaces for photovoltaic and photocatalytic devices Nat Photonics 8 95-103
  • [4] Liz-marzán LM(2012)Plasmonic photocatalysts: harvesting visible light with noble metal nanoparticles Phys Chem Chem Phys 14 9813-9825
  • [5] Lal S(2014)Colloidal nanoparticles as advanced biological sensors Science 346 1247390-1-1247390–10
  • [6] Clare SE(2000)What controls the optical properties of DNA-linked gold nanoparticle assemblies? J Am Chem Soc 122 4640-4650
  • [7] Halas NJ(2013)Formation of self-organized silver nanocup-type structures and their plasmonic absorption Plasmonics 8 811-815
  • [8] Clavero C(2007)Synthesis and characterization of Ag nanoparticles in silica matrix by atom beam sputtering Scr Mater 56 629-632
  • [9] Wang P(2008)Au–ZnO: a tunable localized surface plasmonic nanocomposite Appl Phys Lett 92 043107-1-043107–3
  • [10] Huang B(2001)Photoinduced conversion of silver nanospheres to nanoprisms Science 294 1901-1904