We demonstrate nanometer precision manipulation of multiple nanoparticles at room temperature. This is achieved using the optical binding force, which has been assumed to be weak compared to the optical gradient and scattering forces. We show that trapping by the optical binding force can be over 20 times stronger than by the gradient force and leads to ultrastable, rigid configurations of multiple nanoparticles free in solution – a realization of “optical matter.” In addition, we demonstrate a novel trapping scheme where even smaller nanoparticles are trapped between larger “anchor” particles. Optical binding opens the door for the observation of collective phenomena of nanoparticles and the design of new materials and devices made from op...
Since the invention of optical tweezers, optical manipulation has advanced significantly in scientif...
The impact of optical forces in the physical and biological sciences now enables the manipulation of...
The demonstration of optical binding of micro-particles placed in intense optical fields has resulte...
We demonstrate nanometer precision manipulation of multiple nanoparticles at room temperature. This ...
The invention of the laser in 1960 opened the door for a myriad of studies on the interactions betwe...
Optical binding is a laser-induced inter-particle force that exists between two or more particles su...
Optical trapping is an established field for movement of micron-size objects and cells. However, tra...
The ability to manipulate small particles of matter using the forces of light, optical trapping, for...
Optical forces acting on metallic nanoparticles can be used to organize mesoscale arrays for various...
The ability to manipulate small particles of matter using the forces of light, optical trapping, for...
Optical trapping and manipulation of micrometre-sized particles was first reported in 1970. Since th...
Laser light can induce binding or repulsive forces between particles and thus facilitate manipulatio...
Optical trapping of individual particles is believed to be only effective under highly focused beams...
In the three decades since the development of optical tweezers, optical trapping has become an inval...
Since the invention of optical tweezers, optical manipulation has advanced significantly in scientif...
The impact of optical forces in the physical and biological sciences now enables the manipulation of...
The demonstration of optical binding of micro-particles placed in intense optical fields has resulte...
We demonstrate nanometer precision manipulation of multiple nanoparticles at room temperature. This ...
The invention of the laser in 1960 opened the door for a myriad of studies on the interactions betwe...
Optical binding is a laser-induced inter-particle force that exists between two or more particles su...
Optical trapping is an established field for movement of micron-size objects and cells. However, tra...
The ability to manipulate small particles of matter using the forces of light, optical trapping, for...
Optical forces acting on metallic nanoparticles can be used to organize mesoscale arrays for various...
The ability to manipulate small particles of matter using the forces of light, optical trapping, for...
Optical trapping and manipulation of micrometre-sized particles was first reported in 1970. Since th...
Laser light can induce binding or repulsive forces between particles and thus facilitate manipulatio...
Optical trapping of individual particles is believed to be only effective under highly focused beams...
In the three decades since the development of optical tweezers, optical trapping has become an inval...
Since the invention of optical tweezers, optical manipulation has advanced significantly in scientif...
The impact of optical forces in the physical and biological sciences now enables the manipulation of...
The demonstration of optical binding of micro-particles placed in intense optical fields has resulte...