Nanostructured dielectric metasurfaces offer unprecedented opportunities to manipulate light by imprinting an arbitrary phase gradient on an impinging wavefront1. This has resulted in the realization of a range of flat analogues to classical optical components, such as lenses, waveplates and axicons2–6. However, the change in linear and angular optical momentum7 associated with phase manipulation also results in previously unexploited forces and torques that act on the metasurface itself. Here we show that these optomechanical effects can be utilized to construct optical metavehicles—microscopic particles that can travel long distances under low-intensity plane-wave illumination while being steered by the polarization of the incident light....
A metasurface can manipulate light in a desirable manner by imparting local and space-variant abrupt...
We explore light-driven manipulation, levitation, and propulsion of ultralight weight macroscopic ob...
In integrated circuits, an important prerequisite for success is that every transistor can be driven...
We show how the ability of metasurfaces to steer and bend light can be harnessed to shape optomechan...
Optical tweezers have opened numerous possibilities for precise control of microscopic particles for...
The microscopic arrangement of a material’s components on the nanoscale determines its macroscopic p...
Metamaterials are artificial materials with versatile properties that can be tailored to fit almost ...
Artificial photonic materials, nanofabricated through wavelength-scale engineering, have shown astou...
An object\u27s translational and rotational motion is associated with linear and angular momenta. Wh...
Conventional optical devices such as lenses with aberration correction, quarter-wave plate made of b...
We propose to control the motion of nanoparticles using phase-gradient metasurfaces. The latter are ...
Research in nanophotonics is yielding advances towards grand challenges that have not previously bee...
Control over mechanical motion of nanoscale particles is a valuable functionality desired in a varie...
Auxiliary nanostructures introduce additional flexibility into optomechanical manipulation schemes. ...
Microorganisms move in challenging environments by periodic changes in body shape. In contrast, curr...
A metasurface can manipulate light in a desirable manner by imparting local and space-variant abrupt...
We explore light-driven manipulation, levitation, and propulsion of ultralight weight macroscopic ob...
In integrated circuits, an important prerequisite for success is that every transistor can be driven...
We show how the ability of metasurfaces to steer and bend light can be harnessed to shape optomechan...
Optical tweezers have opened numerous possibilities for precise control of microscopic particles for...
The microscopic arrangement of a material’s components on the nanoscale determines its macroscopic p...
Metamaterials are artificial materials with versatile properties that can be tailored to fit almost ...
Artificial photonic materials, nanofabricated through wavelength-scale engineering, have shown astou...
An object\u27s translational and rotational motion is associated with linear and angular momenta. Wh...
Conventional optical devices such as lenses with aberration correction, quarter-wave plate made of b...
We propose to control the motion of nanoparticles using phase-gradient metasurfaces. The latter are ...
Research in nanophotonics is yielding advances towards grand challenges that have not previously bee...
Control over mechanical motion of nanoscale particles is a valuable functionality desired in a varie...
Auxiliary nanostructures introduce additional flexibility into optomechanical manipulation schemes. ...
Microorganisms move in challenging environments by periodic changes in body shape. In contrast, curr...
A metasurface can manipulate light in a desirable manner by imparting local and space-variant abrupt...
We explore light-driven manipulation, levitation, and propulsion of ultralight weight macroscopic ob...
In integrated circuits, an important prerequisite for success is that every transistor can be driven...