Projects per year
Abstract
Scattering-type scanning near-field optical microscopy (s-SNOM) is a powerful technique for extreme subwavelength imaging and spectroscopy, with around 20 nm spatial resolution. But quantitative relationships between experiment and material properties requires modelling, which can be computationally and conceptually challenging. In this work, we present snompy an open-source Python library which contains implementations of two of the most common s-SNOM models, the finite dipole model (FDM) and the point dipole model (PDM). We show a series of typical uses for this package with demonstrations including simulating nano-Fourier transform infrared (FTIR) spectra and recovering permittivity from experimental s-SNOM data. We also discuss the challenges faced with this sort of modelling, such as competing descriptions of the models in literature, and finite size effects. We hope that snompy will make quantitative s-SNOM modelling more accessible to the wider research community, which will further empower the use of s-SNOM for investigating nanoscale material properties.
Original language | English |
---|---|
Publication status | Published - 31 May 2024 |
Keywords
- cond-mat.mtrl-sci
- physics.optics
Research Beacons, Institutes and Platforms
- Henry Royce Institute
- Photon Science Institute
- Advanced materials
Fingerprint
Dive into the research topics of 'snompy: a package for modelling scattering-type scanning near-field optical microscopy'. Together they form a unique fingerprint.-
Terahertz, Topology, Technology: Realising the potential of nanoscale Dirac materials using near-field terahertz spectroscopy
Boland, J. (PI)
1/07/20 → 31/07/25
Project: Research
-
Cryogenic Ultrafast Scattering-type Terahertz-probe Optical-pump Microscopy (CUSTOM)
Curry, R. (PI), Boland, J. (CoI), Flavell, W. (CoI), Kinloch, I. (CoI) & Kocabas, C. (CoI)
1/02/20 → 31/07/22
Project: Research