Noninvasive and ultra-accurate optical manipulation of nanometer objects has recently gained interest as a powerful tool in nanotechnology and biophysics. Self-induced back-action (SIBA) trapping in nano-optical cavities has the unique potential for trapping and manipulating nanometer-sized objects under low optical intensities. However, thus far, the existence of the SIBA effect has been shown only indirectly via its enhanced trapping performances. In this article, we present the first time direct experimental evidence of the self-reconfiguration of the optical potential that is experienced by a nanoparticle trapped in a plasmonic nanocavity. Our observations enable us to gain further understanding of the SIBA mechanism and to determine th...
Optical manipulation – using light to control matter – is based on the transfer of momentum from con...
Since the invention of optical tweezers, optical manipulation has advanced significantly in scientif...
Optical trapping is an established field for movement of micron-size objects and cells. However, tra...
Noninvasive and ultra-accurate optical manipulation of nanometer objects has recently gained interes...
Gentle manipulation of micrometer-sized dielectric objects with optical forces has found many applic...
Optical trapping is an indispensable tool in physics and the life sciences. However, there is a clea...
Optical trapping has widely affected both the physical and life sciences. Past approaches to optical...
Gentle manipulation of micrometer-sized dielectric objects with optical forces has found many applic...
On-chip optical tweezers based on evanescent fields overcome the diffraction limit of the free-space...
The optomechanical coupling between a resonant optical field and a nanoparticle through trapping for...
The resputtering of gold films from nano-holes defined in a sacrificial PMMA mask, which was made by...
doi:10.3791/4424 (2013). Optical trapping is a technique for immobilizing and manipulating small obj...
Conventional optical tweezers, formed at the diffraction-limited focus of a laser beam, have become ...
Controlled trapping of light absorbing nanoparticles with low-power optical tweezers is crucial for ...
Recent advances in nanotechnologies have prompted the need for tools to accurately and non-invasivel...
Optical manipulation – using light to control matter – is based on the transfer of momentum from con...
Since the invention of optical tweezers, optical manipulation has advanced significantly in scientif...
Optical trapping is an established field for movement of micron-size objects and cells. However, tra...
Noninvasive and ultra-accurate optical manipulation of nanometer objects has recently gained interes...
Gentle manipulation of micrometer-sized dielectric objects with optical forces has found many applic...
Optical trapping is an indispensable tool in physics and the life sciences. However, there is a clea...
Optical trapping has widely affected both the physical and life sciences. Past approaches to optical...
Gentle manipulation of micrometer-sized dielectric objects with optical forces has found many applic...
On-chip optical tweezers based on evanescent fields overcome the diffraction limit of the free-space...
The optomechanical coupling between a resonant optical field and a nanoparticle through trapping for...
The resputtering of gold films from nano-holes defined in a sacrificial PMMA mask, which was made by...
doi:10.3791/4424 (2013). Optical trapping is a technique for immobilizing and manipulating small obj...
Conventional optical tweezers, formed at the diffraction-limited focus of a laser beam, have become ...
Controlled trapping of light absorbing nanoparticles with low-power optical tweezers is crucial for ...
Recent advances in nanotechnologies have prompted the need for tools to accurately and non-invasivel...
Optical manipulation – using light to control matter – is based on the transfer of momentum from con...
Since the invention of optical tweezers, optical manipulation has advanced significantly in scientif...
Optical trapping is an established field for movement of micron-size objects and cells. However, tra...