Rapid tilted-plane Gerchberg-Saxton algorithm for holographic optical tweezers
Benefitting from the development of commercial spatial light modulator (SLM), holographic optical tweezers (HOT) have emerged as a powerful tool for life science, material science and particle physics. The calculation of computer-generated holograms (CGH) for generating multi-focus arrays plays a ke...
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| Published in | Optics express Vol. 28; no. 9; p. 12729 |
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| Main Authors | , , , , , , , , , |
| Format | Journal Article |
| Language | English |
| Published |
United States
27.04.2020
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| Online Access | Get full text |
| ISSN | 1094-4087 1094-4087 |
| DOI | 10.1364/OE.389897 |
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| Abstract | Benefitting from the development of commercial spatial light modulator (SLM), holographic optical tweezers (HOT) have emerged as a powerful tool for life science, material science and particle physics. The calculation of computer-generated holograms (CGH) for generating multi-focus arrays plays a key role in HOT for trapping of a bunch of particles in parallel. To realize dynamic 3D manipulation, we propose a new tilted-plane GS algorithm for fast generation of multiple foci. The multi-focal spots with a uniformity of 99% can be generated in a tilted plane. The computation time for a CGH with 512×512 pixels is less than 0.1 second. We demonstrated the power of the algorithm by simultaneously trapping and rotating silica beads with a 7×7 spots array in three dimensions. The presented algorithm is expected as a powerful kernel of HOT. |
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| AbstractList | Benefitting from the development of commercial spatial light modulator (SLM), holographic optical tweezers (HOT) have emerged as a powerful tool for life science, material science and particle physics. The calculation of computer-generated holograms (CGH) for generating multi-focus arrays plays a key role in HOT for trapping of a bunch of particles in parallel. To realize dynamic 3D manipulation, we propose a new tilted-plane GS algorithm for fast generation of multiple foci. The multi-focal spots with a uniformity of 99% can be generated in a tilted plane. The computation time for a CGH with 512×512 pixels is less than 0.1 second. We demonstrated the power of the algorithm by simultaneously trapping and rotating silica beads with a 7×7 spots array in three dimensions. The presented algorithm is expected as a powerful kernel of HOT. Benefitting from the development of commercial spatial light modulator (SLM), holographic optical tweezers (HOT) have emerged as a powerful tool for life science, material science and particle physics. The calculation of computer-generated holograms (CGH) for generating multi-focus arrays plays a key role in HOT for trapping of a bunch of particles in parallel. To realize dynamic 3D manipulation, we propose a new tilted-plane GS algorithm for fast generation of multiple foci. The multi-focal spots with a uniformity of 99% can be generated in a tilted plane. The computation time for a CGH with 512×512 pixels is less than 0.1 second. We demonstrated the power of the algorithm by simultaneously trapping and rotating silica beads with a 7×7 spots array in three dimensions. The presented algorithm is expected as a powerful kernel of HOT.Benefitting from the development of commercial spatial light modulator (SLM), holographic optical tweezers (HOT) have emerged as a powerful tool for life science, material science and particle physics. The calculation of computer-generated holograms (CGH) for generating multi-focus arrays plays a key role in HOT for trapping of a bunch of particles in parallel. To realize dynamic 3D manipulation, we propose a new tilted-plane GS algorithm for fast generation of multiple foci. The multi-focal spots with a uniformity of 99% can be generated in a tilted plane. The computation time for a CGH with 512×512 pixels is less than 0.1 second. We demonstrated the power of the algorithm by simultaneously trapping and rotating silica beads with a 7×7 spots array in three dimensions. The presented algorithm is expected as a powerful kernel of HOT. |
| Author | Li, Runze Liang, Yansheng Li, Xing Wang, Zhaojun Yu, Xianghua Yan, Shaohui Cai, Yanan Yao, Baoli Lei, Ming Zhou, Yuan |
| Author_xml | – sequence: 1 givenname: Yanan surname: Cai fullname: Cai, Yanan – sequence: 2 givenname: Shaohui surname: Yan fullname: Yan, Shaohui – sequence: 3 givenname: Zhaojun surname: Wang fullname: Wang, Zhaojun – sequence: 4 givenname: Runze orcidid: 0000-0003-4506-8431 surname: Li fullname: Li, Runze – sequence: 5 givenname: Yansheng orcidid: 0000-0002-3561-1317 surname: Liang fullname: Liang, Yansheng – sequence: 6 givenname: Yuan orcidid: 0000-0001-8983-6063 surname: Zhou fullname: Zhou, Yuan – sequence: 7 givenname: Xing surname: Li fullname: Li, Xing – sequence: 8 givenname: Xianghua orcidid: 0000-0002-7447-1396 surname: Yu fullname: Yu, Xianghua – sequence: 9 givenname: Ming surname: Lei fullname: Lei, Ming – sequence: 10 givenname: Baoli orcidid: 0000-0002-1723-6680 surname: Yao fullname: Yao, Baoli |
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