Large optical field enhancement for nanotips with large opening angles
arXiv:1412.8172 · doi:10.1088/1367-2630/17/6/063010
Abstract
We theoretically investigate the dependence of the enhancement of optical near-fields at nanometric tips on the shape, size, and material of the tip. We confirm a strong dependence of the field enhancement factor on the radius of curvature. In addition, we find a surprisingly strong increase of field enhancement with increasing opening angle of the nanotips. For gold and tungsten nanotips in the experimentally relevant parameter range (radius of curvature nm at nm laser wavelength), we obtain field enhancement factors of up to for Au and for W for large opening angles. We confirm this strong dependence on the opening angle for many other materials featuring a wide variety in their dielectric response. For dielectrics, the opening angle dependence is traced back to the electrostatic force of the induced surface charge at the tip shank. For metals, the plasmonic response strongly increases the field enhancement and shifts the maximum field enhancement to smaller opening angles.
16 pages, 12 figures
References in corpus (12)
- Attosecond control of electrons emitted from a nanoscale metal tip
- A Femtosecond Nanometer Free Electron Source
- A spatially and temporally localized sub-laser-cycle electron source
- Strong-field above-threshold photoemission from sharp metal tips
- Carrier-envelope phase effects on the strong-field photoemission of electrons from metallic nanostructures
- Laser-induced ultrafast electron emission from a field emission tip
- Ultrafast nano-focusing with full optical waveform control
- Measurement of the complex dielectric constant of a single gold nanoparticle
- Electron rescattering at metal nanotips induced by ultrashort laser pulses
- Probing of optical near-fields by electron rescattering on the 1 nm scale
- Laser-induced Field Emission from Tungsten Tip: Optical Control of Emission Sites and Emission Process
- Fluctuating Surface Currents: A New Algorithm for Efficient Prediction of Casimir Interactions among Arbitrary Materials in Arbitrary Geometries. I. Theory
Cited by in corpus (9)
- Attosecond physics at the nanoscale
- Two-color coherent control of femtosecond above-threshold photoemission from a tungsten nanotip
- Femtosecond laser-induced electron emission from nanodiamond-coated tungsten needle tips
- Femtosecond single- to few-electron point-projection microscopy for nanoscale dynamic imaging
- Quantum interference visibility spectroscopy in two-color photoemission from tungsten needle tips
- Driving electrons at needle tips strongly with quantum light
- Two-color coherent control in photoemission from gold needle tips
- Ultrafast time resolved photo-electric emission
- Optical Stark Effect of a Single Defect on TiO2(110) Surface