International audienceNear-field optical forces arise from evanescent electromagnetic fields and can be advantageously used for on-chip optical trapping. In this work, we investigate how evanescent fields at the surface of photonic cavities can efficiently trap micro-objects such as polystyrene particles and bacteria. We study first the influence of trapped particle’s size on the trapping potential and introduce an original optofluidic near-field optical microscopy technique. Then we analyze the rotational motion of trapped clusters of microparticles and investigate their possible use as microfluidic micro-tools such as integrated micro-flow vane. Eventually, we demonstrate efficient on-chip optical trapping of various kinds of bacteria
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceBy analyzing the thermal motion of fluorescent dielectric microbeads trapped i...
On-chip optical trapping and manipulation of cells based on the evanescent field of photonic structu...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...
In recent years, optical micromachines based on forces exerted by strongly focused beams of light ha...
International audienceParticles manipulation with optical forces is known as optical tweezing. While...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
On-chip optical trapping and manipulation of cells based on the evanescent field of photonic structu...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceBy analyzing the thermal motion of fluorescent dielectric microbeads trapped i...
On-chip optical trapping and manipulation of cells based on the evanescent field of photonic structu...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...
In recent years, optical micromachines based on forces exerted by strongly focused beams of light ha...
International audienceParticles manipulation with optical forces is known as optical tweezing. While...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
On-chip optical trapping and manipulation of cells based on the evanescent field of photonic structu...
International audienceFourteen years ago, optical lattices and holographic tweezers were considered ...
International audienceBy analyzing the thermal motion of fluorescent dielectric microbeads trapped i...
On-chip optical trapping and manipulation of cells based on the evanescent field of photonic structu...