We investigated nonlinear photoemission from plasmonic films with femtosecond, mid-infrared pulses at 3.1 μm wavelength. Transition between regimes of multi-photon-induced and tunneling emission is demonstrated at an unprecedentedly low intensity of <1 GW/cm2. Thereby, strong-field nanophysics can be accessed at extremely low intensities by exploiting nanoscale plasmonic field confinement, enhancement and ponderomotive wavelength scaling at the same time. Results agree well with quantum mechanical modelling. Our scheme demonstrates an alternative paradigm and regime in strong-field physics
Highly nonlinear optical processes require high intensities, typically achieved with ultrashort lase...
We demonstrate that prestructured metal nanogaps can be shaped on-chip to below 10 nm by femtosecond...
We investigated electron emission induced by an intense mid-infrared (MIR) field from a nanoscale al...
We investigated nonlinear photoemission from plasmonic films with femtosecond, mid-infrared pulses a...
We investigated nonlinear photoemission from plasmonic films with femtosecond, mid-infrared pulses a...
We present strong-field photoemission from plasmonic nanotips driven by ultrashort pulses at wavelen...
Strong-field physics, an extreme limit of light–matter interaction is expanding into the realm of su...
The present status and development of strong-field nano-optics, an emerging field of nonlinear optic...
Light fields from modern high-intensity, femtosecond laser systems can produce electrical forces tha...
Metallic nanotips exhibit large electric field enhancements over an extremely broad bandwidth spanni...
At high intensities, light–matter interactions are controlled by the electric field of the exciting ...
Light-matter interactions are interesting at high intensities: strong-field effects can result in ul...
Light-matter interactions are interesting at high intensities: strong-field effects can result in ul...
We report a time-resolved normal-incidence photoemission electron microscope with an imaging time-of...
This Chapter presents recent findings on nonlinear ionization and photoemission processes at metalli...
Highly nonlinear optical processes require high intensities, typically achieved with ultrashort lase...
We demonstrate that prestructured metal nanogaps can be shaped on-chip to below 10 nm by femtosecond...
We investigated electron emission induced by an intense mid-infrared (MIR) field from a nanoscale al...
We investigated nonlinear photoemission from plasmonic films with femtosecond, mid-infrared pulses a...
We investigated nonlinear photoemission from plasmonic films with femtosecond, mid-infrared pulses a...
We present strong-field photoemission from plasmonic nanotips driven by ultrashort pulses at wavelen...
Strong-field physics, an extreme limit of light–matter interaction is expanding into the realm of su...
The present status and development of strong-field nano-optics, an emerging field of nonlinear optic...
Light fields from modern high-intensity, femtosecond laser systems can produce electrical forces tha...
Metallic nanotips exhibit large electric field enhancements over an extremely broad bandwidth spanni...
At high intensities, light–matter interactions are controlled by the electric field of the exciting ...
Light-matter interactions are interesting at high intensities: strong-field effects can result in ul...
Light-matter interactions are interesting at high intensities: strong-field effects can result in ul...
We report a time-resolved normal-incidence photoemission electron microscope with an imaging time-of...
This Chapter presents recent findings on nonlinear ionization and photoemission processes at metalli...
Highly nonlinear optical processes require high intensities, typically achieved with ultrashort lase...
We demonstrate that prestructured metal nanogaps can be shaped on-chip to below 10 nm by femtosecond...
We investigated electron emission induced by an intense mid-infrared (MIR) field from a nanoscale al...