Title :
Photothermal imaging of nanoparticles and cells
Author :
Zharov, Vladimir P. ; Lapotko, Dmitri O.
Author_Institution :
Philips Classic Laser Labs., Univ. of Arkansas for Med. Sci., Little Rock, AR, USA
Abstract :
This review summarizes the findings of recent applications of time-domain far-field photothermal (PT) technique to the detection and imaging of nanoscale absorbing particles. This two-beam (pump-probe) technique is based on time-resolved PT visualization of laser-induced thermal effects around nanoparticles. Imaging is accomplished, after an adjustable time delay after the pump laser pulse, with a second probe beam that senses the nanotarget. Using a tunable optical parametric oscillator laser (wavelength, 420 to 570 nm; energy, 0.1-300 μJ; pulse width, 8 ns) as the pump laser and a Raman shifter (639 nm, 10 nJ, 13 ns) as the probe laser, with a tunable delay of 0 to 5 000 ns of the probe pulse relative to the pump pulse, this approach has demonstrated the capability to visualize nanoscale gold particles (2 to 250 nm) alone and in cells, liposomes (30 to 90 nm), neutral red-stained particles (30 to 500 nm), and polystyrene beads. Different applications of the time-resolved PT technique are discussed, including imaging of absorbing cellular nanostructures and optimization of selective killing of cancer cells and bacteria.
Keywords :
Raman lasers; biomedical optical imaging; biothermics; cancer; cellular biophysics; delays; laser applications in medicine; laser tuning; microorganisms; nanoparticles; nanotechnology; optical parametric oscillators; optical pumping; photothermal effects; 0 to 5000 ns; 0.1 to 300 muJ; 10 nJ; 2 to 500 nm; 420 to 570 nm; 639 nm; Raman shifter; absorbing cellular nanostructures; bacteria; cancer cell killing; cellular imaging; far-field photothermal technique; laser-induced thermal effects; liposomes; nanoparticles; nanoscale absorbing particles; nanoscale gold particles; nanotarget sensing; neutral red-stained particles; photothermal imaging; polystyrene beads; pump laser; pump-probe technique; time-domain photothermal technique; time-resolved PT visualization; tunable delay; tunable optical parametric oscillator; two-beam technique; Laser excitation; Nanoparticles; Optical imaging; Optical pulses; Probes; Pump lasers; Space vector pulse width modulation; Time domain analysis; Tunable circuits and devices; Visualization; Beads; cells; imaging; laser medicine; liposomes; nanoparticles; photothermal (PT) effect;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2005.857382