Micromirror Total Internal Reflection Microscopy for High-Performance Single Particle Tracking at Interfaces.
Xuanhui MengAdar Sonn-SegevAnne SchumacherDaniel ColeGavin YoungStephen ThorpeRobert W StyleEric R DufresnePhilipp KukuraPublished in: ACS photonics (2021)
Single particle tracking has found broad applications in the life and physical sciences, enabling the observation and characterization of nano- and microscopic motion. Fluorescence-based approaches are ideally suited for high-background environments, such as tracking lipids or proteins in or on cells, due to superior background rejection. Scattering-based detection is preferable when localization precision and imaging speed are paramount due to the in principle infinite photon budget. Here, we show that micromirror-based total internal reflection dark field microscopy enables background suppression previously only reported for interferometric scattering microscopy, resulting in nanometer localization precision at 6 μs exposure time for 20 nm gold nanoparticles with a 25 × 25 μm2 field of view. We demonstrate the capabilities of our implementation by characterizing sub-nanometer deterministic flows of 20 nm gold nanoparticles at liquid-liquid interfaces. Our results approach the optimal combination of background suppression, localization precision, and temporal resolution achievable with pure scattering-based imaging and tracking of nanoparticles at interfaces.
Keyphrases
- gold nanoparticles
- high resolution
- single molecule
- high speed
- label free
- high throughput
- living cells
- optical coherence tomography
- photodynamic therapy
- induced apoptosis
- healthcare
- primary care
- physical activity
- monte carlo
- mass spectrometry
- mental health
- cell cycle arrest
- endoplasmic reticulum stress
- pi k akt
- loop mediated isothermal amplification