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Frequency comb transferred by surface plasmon resonance

Author(s)
Geng, Xiao TaoChun, Byung JaeSeo, Ji HoonSeo, KwanyongYoon, HanaKim, Dong-EonKim, Young-JinKim, Seungchul
Issued Date
2016-02
DOI
10.1038/ncomms10685
URI
https://scholarworks.unist.ac.kr/handle/201301/18819
Fulltext
http://www.nature.com/ncomms/2016/160222/ncomms10685/full/ncomms10685.html
Citation
NATURE COMMUNICATIONS, v.7, pp.10685
Abstract
Frequency combs, millions of narrow-linewidth optical modes referenced to an atomic clock, have shown remarkable potential in time/frequency metrology, atomic/molecular spectroscopy and precision LIDARs. Applications have extended to coherent nonlinear Raman spectroscopy of molecules and quantum metrology for entangled atomic qubits. Frequency combs will create novel possibilities in nano-photonics and plasmonics; however, its interrelation with surface plasmons is unexplored despite the important role that plasmonics plays in nonlinear spectroscopy and quantum optics through the manipulation of light on a sub-wavelength scale. Here, we demonstrate that a frequency comb can be transformed to a plasmonic comb in plasmonic nanostructures and reverted to the original frequency comb without noticeable degradation of <6.51 x 10(-19) in absolute position, 2.92 x 10(-19) in stability and 1Hz in linewidth. The results indicate that the superior performance of a well-defined frequency comb can be applied to nanoplasmonic spectroscopy, quantum metrology and subwavelength photonic circuits.
Publisher
NATURE PUBLISHING GROUP
ISSN
2041-1723
Keyword
EXTRAORDINARY OPTICAL-TRANSMISSIONSTOKES-RAMAN SCATTERINGPHASE MODULATORSDECIMAL PLACENOBEL LECTURELASERTIMEMETROLOGYDISTANCECLOCKS

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