Photothermal Single Particle Microscopy
arXiv:1105.3815 · doi:10.1364/JOSAA.29.002237
Abstract
Photothermal microscopy has recently complemented single molecule fluorescence microscopy by the detection of individual nano-objects in absorption. Photothermal techniques gain their superior sensitivity by exploiting a heat induced refractive index change around the absorbing nano-object. Numerous new applications to nanoparticles, nanorods and even single molecules have been reported all refering to the fact that photothermal microscopy is an extinction measurement on a heat induced refractive index profile. Here, we show that the actual physical mechanism generating a photothermal signal from a single molecule/particle is fundamentally different from the assumed extinction measurement. Combining photothermal microscopy, light scattering microscopy as well as accurate Mie scattering calculations to single gold nanoparticles, we reveal that the detection mechanism is quantitatively explained by a nanolensing effect of the long range refractive index profile. Our results lay the foundation for future developments and quantitative applications of single molecule absorption microscopy.
main manuscript (5 figures), 1 supplement (3 figures)
References in corpus (4)
Cited by in corpus (7)
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- Small Gold Nanorods with Tunable Absorption for Photothermal Microscopy in Cells
- Photonic Rutherford Scattering: A Classical and Quantum Mechanical Analogy in Ray- and Wave-Optics
- Bond-selective interferometric scattering microscopy
- Energy Redistribution Signatures in Transmission Microscopy of Rayleigh- and Mie-particles
- The physics of the photothermal detection of single absorbing nano-objects: A review
- Microscopyc description of the Photothermal increase of temperature for metallic nanoparticles excited with short-laser pulses