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Ultrafast and Nanoscale Plasmonic Phenomena in Exfoliated Graphene Revealed by Infrared Pump-Probe Nanoscopy

Authors :
Wagner, Martin
Fei, Zhe
McLeod, Alexander S.
Rodin, Aleksandr S.
Bao, Wenzhong
Iwinski, Eric G.
Zhao, Zeng
Goldflam, Michael
Liu, Mengkun
Dominguez, Gerardo
Thiemens, Mark
Fogler, Michael M.
Neto, Antonio H. Castro
Lau, Chun Ning
Amarie, Sergiu
Keilmann, Fritz
Basov, D. N.
Source :
Nano Letters 14, 894 (2014)
Publication Year :
2014

Abstract

Pump-probe spectroscopy is central for exploring ultrafast dynamics of fundamental excitations, collective modes and energy transfer processes. Typically carried out using conventional diffraction-limited optics, pump-probe experiments inherently average over local chemical, compositional, and electronic inhomogeneities. Here we circumvent this deficiency and introduce pump-probe infrared spectroscopy with ~20 nm spatial resolution, far below the diffraction limit, which is accomplished using a scattering scanning near-field optical microscope (s-SNOM). This technique allows us to investigate exfoliated graphene single-layers on SiO2 at technologically significant mid-infrared (MIR) frequencies where the local optical conductivity becomes experimentally accessible through the excitation of surface plasmons via the s-SNOM tip. Optical pumping at near-infrared (NIR) frequencies prompts distinct changes in the plasmonic behavior on 200 femtosecond (fs) time scales. The origin of the pump-induced, enhanced plasmonic response is identified as an increase in the effective electron temperature up to several thousand Kelvin, as deduced directly from the Drude weight associated with the plasmonic resonances.<br />Comment: 27 pages (including Supporting Information), 8 figures

Details

Database :
arXiv
Journal :
Nano Letters 14, 894 (2014)
Publication Type :
Report
Accession number :
edsarx.1402.6003
Document Type :
Working Paper
Full Text :
https://doi.org/10.1021/nl4042577