4.8 Article

Using the Plasmon Linewidth To Calculate the Time and Efficiency of Electron Transfer between Gold Nanorods and Graphene

期刊

ACS NANO
卷 7, 期 12, 页码 11209-11217

出版社

AMER CHEMICAL SOC
DOI: 10.1021/nn404985h

关键词

plasmon damping; hot electrons; one-photon photoluminescence; single-particle spectroscopy; surface plasmon resonance; graphene; plasmon linewidth

资金

  1. Robert A. Welch Foundation [C-1664]
  2. ONR [N00014-10-1-0989]
  3. NSF [CHE-0955286, CNS-0821727]
  4. ARO [MURI W911NF-12-1-0407]
  5. ACS-PRF [50191-DNI6]
  6. Cyberinfrastructure for Computational Research
  7. U.S. Office of Naval Research (MURI) [N000014-09-1-1066]
  8. FAME Center, one of six centers of STARnet
  9. Semiconductor Research Corporation program
  10. MARCO
  11. DARPA
  12. Keck Center of the Gulf Coast Consortia through the Nanobiology Interdisciplinary Graduate Training Program of the Gulf Coast Consortia (NIH) [T32EB009379]
  13. National Science Foundation [0940902]
  14. Division Of Chemistry
  15. Direct For Mathematical & Physical Scien [0955286] Funding Source: National Science Foundation

向作者/读者索取更多资源

We present a quantitative analysis of the electron transfer between single gold nanorods and monolayer graphene under no electrical bias. Using single-particle dark-field scattering and photoluminescence spectroscopy to access the homogeneous linewidth, we observe broadening of the surface plasmon resonance for gold nanorods on graphene compared to nanorods on a quartz substrate. g Because of the absence of spectral plasmon shifts, dielectric interactions between the gold nanorods and graphene are not important and we instead assign the plasmon damping to charge transfer between plasmon-generated hot electrons and the graphene that acts as an efficient acceptor. Analysis of the plasmon linewidth yields an average electron transfer time of 160 +/- 30 fs, which is otherwise difficult to measure directly in the time domain with single-particle sensitivity. In comparison to intrinsic hot electron decay and radiative relaxation, we furthermore calculate from the plasmon linewidth that charge transfer between the gold nanorods and the graphene support occurs with an efficiency of similar to 10%. Our results are important for future applications of light harvesting with metal nanoparticle plasmons and efficient hot electron acceptors as well as for understanding hot electron transfer in plasmon-assisted chemical reactions.

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