TY - JOUR
T1 - Distance-controllable and direction-steerable opto-conveyor for targeting delivery
AU - Che, Zhen
AU - Zhu, Wenguo
AU - Huang, Yaoming
AU - Zhang, Yu
AU - Zhuo, Linqing
AU - Fan, Pengpeng
AU - Li, Zhibin
AU - Zheng, Huadan
AU - Long, Wenjin
AU - Qiu, Wentao
AU - Luo, Yunhan
AU - Zhang, Jun
AU - Ge, Jinghua
AU - Yu, Jianhui
AU - Chen, Zhe
N1 - Publisher Copyright:
© 2020 Chinese Laser Press.
PY - 2020/7/1
Y1 - 2020/7/1
N2 - Opto-conveyors have attracted widespread interest in various fields because of their non-invasive and non-contact delivery of micro/nanoparticles. However, the flexible control of the delivery distance and the dynamic steering of the delivery direction, although very desirable in all-optical manipulation, have not yet been achieved by optoconveyors. Here, using a simple and cost-effective scheme of an elliptically focused laser beam obliquely irradiated on a substrate, a direction-steerable and distance-controllable opto-conveyor for the targeting delivery of microparticles is implemented. Theoretically, in the proposed scheme of the opto-conveyor, the transverse and longitudinal resultant forces of the optical gradient force and the optical scattering force result in the transverse confinement and the longitudinal transportation of microparticles, respectively. In this study, it is experimentally shown that the proposed opto-conveyor is capable of realizing the targeting delivery for microparticles. Additionally, the delivery distance of microparticles can be flexibly and precisely controlled by simply adjusting the irradiation time. By simply rotating the cylindrical lens, the proposed opto-conveyor is capable of steering the delivery direction flexibly within a large range of azimuthal angles, from -75° to 75°. This study also successfully demonstrated the real-time dynamic steering of the delivery direction from -45° to 45° with the dynamical rotation of the cylindrical lens. Owing to its simplicity, flexibility, and controllability, the proposed method is capable of creating new opportunities in bioassays as well as in drug delivery.
AB - Opto-conveyors have attracted widespread interest in various fields because of their non-invasive and non-contact delivery of micro/nanoparticles. However, the flexible control of the delivery distance and the dynamic steering of the delivery direction, although very desirable in all-optical manipulation, have not yet been achieved by optoconveyors. Here, using a simple and cost-effective scheme of an elliptically focused laser beam obliquely irradiated on a substrate, a direction-steerable and distance-controllable opto-conveyor for the targeting delivery of microparticles is implemented. Theoretically, in the proposed scheme of the opto-conveyor, the transverse and longitudinal resultant forces of the optical gradient force and the optical scattering force result in the transverse confinement and the longitudinal transportation of microparticles, respectively. In this study, it is experimentally shown that the proposed opto-conveyor is capable of realizing the targeting delivery for microparticles. Additionally, the delivery distance of microparticles can be flexibly and precisely controlled by simply adjusting the irradiation time. By simply rotating the cylindrical lens, the proposed opto-conveyor is capable of steering the delivery direction flexibly within a large range of azimuthal angles, from -75° to 75°. This study also successfully demonstrated the real-time dynamic steering of the delivery direction from -45° to 45° with the dynamical rotation of the cylindrical lens. Owing to its simplicity, flexibility, and controllability, the proposed method is capable of creating new opportunities in bioassays as well as in drug delivery.
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U2 - 10.1364/PRJ.388106
DO - 10.1364/PRJ.388106
M3 - Article
AN - SCOPUS:85088584945
SN - 2327-9125
VL - 8
SP - 1124
EP - 1133
JO - Photonics Research
JF - Photonics Research
IS - 7
ER -