4.8 Article

Gate-tuning of graphene plasmons revealed by infrared nano-imaging

期刊

NATURE
卷 487, 期 7405, 页码 82-85

出版社

NATURE PUBLISHING GROUP
DOI: 10.1038/nature11253

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资金

  1. AFOSR
  2. ONR [N00014-09-1-0724]
  3. DARPA
  4. DOE-BES [DE-FG02-00ER45799]
  5. NSF [DMR/1106358, PHY11-25915]
  6. ONR/DMEA [H94003-10-2-1003]
  7. FENA Focus Center
  8. NASA
  9. UCOP
  10. NRF-CRP [R-144-000-295-281]
  11. DOE [DE-FG02-08ER46512]
  12. Alexander von Humboldt Foundation
  13. Deutsche Forschungsgemeinschaft through the Cluster of Excellence Munich Centre for Advanced Photonics
  14. Direct For Mathematical & Physical Scien [1106358, 0748910] Funding Source: National Science Foundation
  15. Division Of Materials Research [0748910, 1106358] Funding Source: National Science Foundation

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Surface plasmons are collective oscillations of electrons in metals or semiconductors that enable confinement and control of electromagnetic energy at subwavelength scales(1-5). Rapid progress in plasmonics has largely relied on advances in device nano-fabrication(5-7), whereas less attention has been paid to the tunable properties of plasmonic media. One such medium-graphene-is amenable to convenient tuning of its electronic and optical properties by varying the applied voltage(8-11). Here, using infrared nano-imaging, we show that common graphene/SiO2/Si back-gated structures support propagating surface plasmons. The wavelength of graphene plasmons is of the order of 200 nanometres at technologically relevant infrared frequencies, and they can propagate several times this distance. We have succeeded in altering both the amplitude and the wavelength of these plasmons by varying the gate voltage. Using plasmon interferometry, we investigated losses in graphene by exploring real-space profiles of plasmon standing waves formed between the tip of our nano-probe and the edges of the samples. Plasmon dissipation quantified through this analysis is linked to the exotic electrodynamics of graphene(10). Standard plasmonic figures of merit of our tunable graphene devices surpass those of common metal-based structures.

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