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Spatiotemporal control of nanooptical excitations.


ABSTRACT: The most general investigation and exploitation of light-induced processes require simultaneous control over spatial and temporal properties of the electromagnetic field on a femtosecond time and nanometer length scale. Based on the combination of polarization pulse shaping and time-resolved two-photon photoemission electron microscopy, we demonstrate such control over nanoscale spatial and ultrafast temporal degrees of freedom of an electromagnetic excitation in the vicinity of a nanostructure. The time-resolved cross-correlation measurement of the local photoemission yield reveals the switching of the nanolocalized optical near-field distribution with a lateral resolution well below the diffraction limit and a temporal resolution on the femtosecond time scale. In addition, successful adaptive spatiotemporal control demonstrates the flexibility of the method. This flexible simultaneous control of temporal and spatial properties of nanophotonic excitations opens new possibilities to tailor and optimize the light-matter interaction in spectroscopic methods as well as in nanophotonic applications.

SUBMITTER: Aeschlimann M 

PROVIDER: S-EPMC2851794 | biostudies-literature | 2010 Mar

REPOSITORIES: biostudies-literature

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Spatiotemporal control of nanooptical excitations.

Aeschlimann Martin M   Bauer Michael M   Bayer Daniela D   Brixner Tobias T   Cunovic Stefan S   Dimler Frank F   Fischer Alexander A   Pfeiffer Walter W   Rohmer Martin M   Schneider Christian C   Steeb Felix F   Strüber Christian C   Voronine Dmitri V DV  

Proceedings of the National Academy of Sciences of the United States of America 20100308 12


The most general investigation and exploitation of light-induced processes require simultaneous control over spatial and temporal properties of the electromagnetic field on a femtosecond time and nanometer length scale. Based on the combination of polarization pulse shaping and time-resolved two-photon photoemission electron microscopy, we demonstrate such control over nanoscale spatial and ultrafast temporal degrees of freedom of an electromagnetic excitation in the vicinity of a nanostructure.  ...[more]

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