Optoelectronic tweezers (OET) has advanced within the past decade to become a promising tool for cell and microparticle manipulation. Its incompatibility with high conductivity media and limited throughput remain two major technical challenges. Here a novel manipulation concept and corresponding platform called Self-Locking Optoelectronic Tweezers (SLOT) are proposed and demonstrated to tackle these challenges concurrently. The SLOT platform comprises a periodic array of optically tunable phototransistor traps above which randomly dispersed single cells and microparticles are self-aligned to and retained without light illumination. Light beam illumination on a phototransistor turns off the trap and releases the trapped cell, which is then t...
Single-cell manipulation is considered a key technology in biomedical research. However, the lack of...
International audienceSingle-cell manipulation is considered a key technology in biomedical research...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...
Optoelectronic tweezers (OET), based on light-induced dielectrophoresis, has been shown as a versati...
This paper reports on cell and microparticle manipulation using optically induced dielectrophoresis....
Abstract: Optoelectronic tweezers is a new tool for parallel optical manipulation of colloids and ce...
Abstract Optoelectronic tweezers is a new optical manipulation technique to trap particles with size...
Optoelectronic Tweezers (OET) creates patterned electrical fields by selectively illuminating a phot...
We demonstrate, for the first-time, long-term culturing of single cells under continuous phototransi...
Abstract: We report on a novel phototransistor-based optoelectronic tweezers (OET) that, for the fir...
Abstract—Optoelectronic tweezers (OET) is a promising ap-proach for the parallel manipulation of sin...
In this paper we present trap profile measurements for HeLa cells in Optoelectronic Tweezers (OET) b...
Micro- and nano-particles can be trapped in locally strong or weak regions of a non-uniform electric...
Abstract—Optoelectronic tweezers (OET) is a new tool for non-invasive, parallel manipulation of cell...
Light patterned electrical fields have been widely used for the manipulation of microparticles, from...
Single-cell manipulation is considered a key technology in biomedical research. However, the lack of...
International audienceSingle-cell manipulation is considered a key technology in biomedical research...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...
Optoelectronic tweezers (OET), based on light-induced dielectrophoresis, has been shown as a versati...
This paper reports on cell and microparticle manipulation using optically induced dielectrophoresis....
Abstract: Optoelectronic tweezers is a new tool for parallel optical manipulation of colloids and ce...
Abstract Optoelectronic tweezers is a new optical manipulation technique to trap particles with size...
Optoelectronic Tweezers (OET) creates patterned electrical fields by selectively illuminating a phot...
We demonstrate, for the first-time, long-term culturing of single cells under continuous phototransi...
Abstract: We report on a novel phototransistor-based optoelectronic tweezers (OET) that, for the fir...
Abstract—Optoelectronic tweezers (OET) is a promising ap-proach for the parallel manipulation of sin...
In this paper we present trap profile measurements for HeLa cells in Optoelectronic Tweezers (OET) b...
Micro- and nano-particles can be trapped in locally strong or weak regions of a non-uniform electric...
Abstract—Optoelectronic tweezers (OET) is a new tool for non-invasive, parallel manipulation of cell...
Light patterned electrical fields have been widely used for the manipulation of microparticles, from...
Single-cell manipulation is considered a key technology in biomedical research. However, the lack of...
International audienceSingle-cell manipulation is considered a key technology in biomedical research...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...