Title :
Four-wave mixing of gold nanoparticles for three-dimensional cell microscopy
Author :
Masia, Francesco ; Langbein, Wolfgang ; Watson, Peter ; Borri, Paola
Author_Institution :
Sch. of Biosci., Cardiff Univ., Cardiff, UK
Abstract :
Optical microscopy is an indispensable tool for obtaining spatial and temporal resolution within living cells and tissues. In this paper, a novel multiphoton microscopy technique which exploits the third-order nonlinearity called four-wave mixing and applied to gold nanoparticles in resonance with their surface plasmon is developed. The coherent, transient and resonant nature of this signal allows the interferometric time-resolved detection of four-wave mixing specifically originating from GNPs, with particle diameters down to 5nm. This paper demonstrate high-contrast, background-free imaging of gold-labelled Golgi structures in HepG2 cells with a sub-diffraction-limit lateral (axial) resolution of 140nm (470nm) at excitation powers corresponding to less than 3K photothermal heating, compatible to live cell imaging. These results pave the way towards photostable non-toxic and highly sensitive in-vivo optical imaging with sub-micron three-dimensional resolution.
Keywords :
biological techniques; cellular biophysics; gold; image resolution; multiphoton processes; multiwave mixing; nanoparticles; optical microscopy; photothermal effects; surface plasmon resonance; Au; HepG2 cell; four-wave mixing; gold nanoparticle; image resolution; interferometric time-resolved detection; multiphoton microscopy technique; photothermal heating; surface plasmon resonance; Four-wave mixing; Gold; High-resolution imaging; Image resolution; Nanoparticles; Nonlinear optics; Optical imaging; Optical microscopy; Resonance; Signal resolution;
Conference_Titel :
Lasers and Electro-Optics 2009 and the European Quantum Electronics Conference. CLEO Europe - EQEC 2009. European Conference on
Conference_Location :
Munich
Print_ISBN :
978-1-4244-4079-5
Electronic_ISBN :
978-1-4244-4080-1
DOI :
10.1109/CLEOE-EQEC.2009.5191714