Holographic Optical Tweezers That Use an Improved Gerchberg-Saxton Algorithm

被引:5
作者
Zhou, Zhehai [1 ]
Hu, Guoqing [1 ]
Zhao, Shuang [1 ]
Li, Huiyu [1 ]
Zhang, Fan [1 ]
机构
[1] Beijing Informat Sci & Technol Univ, Key Lab Minist Educ Optoelect Measurement Technol, Beijing 100192, Peoples R China
基金
中国国家自然科学基金;
关键词
Gerchberg-Saxton algorithm; holographic optical tweezers; spatial light modulator; optical trapping; optical manipulation; PHASE; GENERATION;
D O I
10.3390/mi14051014
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
It is very important for holographic optical tweezers (OTs) to develop high-quality phase holograms through calculation by using some computer algorithms, and one of the most commonly used algorithms is the Gerchberg-Saxton (GS) algorithm. An improved GS algorithm is proposed in the paper to further enhance the capacities of holographic OTs, which can improve the calculation efficiencies compared with the traditional GS algorithm. The basic principle of the improved GS algorithm is first introduced, and then theoretical and experimental results are presented. A holographic OT is built by using a spatial light modulator (SLM), and the desired phase that is calculated by the improved GS algorithm is loaded onto the SLM to obtain expected optical traps. For the same sum of squares due to error SSE and fitting coefficient ?, the iterative number from using the improved GS algorithm is smaller than that from using traditional GS algorithm, and the iteration speed is faster about 27%. Multi-particle trapping is first achieved, and dynamic multiple-particle rotation is further demonstrated, in which multiple changing hologram images are obtained continuously through the improved GS algorithm. The manipulation speed is faster than that from using the traditional GS algorithm. The iterative speed can be further improved if the computer capacities are further optimized.
引用
收藏
页数:9
相关论文
共 20 条
[1]   Dynamic measurements and simulations of airborne picolitre-droplet coalescence in holographic optical tweezers [J].
Bzdek, Bryan R. ;
Collard, Liam ;
Sprittles, James E. ;
Hudson, Andrew J. ;
Reid, Jonathan P. .
JOURNAL OF CHEMICAL PHYSICS, 2016, 145 (05)
[2]   Rapid tilted-plane Gerchberg-Saxton algorithm for holographic optical tweezers [J].
Cai, Yanan ;
Yan, Shaohui ;
Wang, Zhaojun ;
Li, Runze ;
Liang, Yansheng ;
Zhou, Yuan ;
Li, Xing ;
Yu, Xianghua ;
Lei, Ming ;
Yao, Baoli .
OPTICS EXPRESS, 2020, 28 (09) :12729-12739
[3]   Rotation of single live mammalian cells using dynamic holographic optical tweezers [J].
Cao, Bin ;
Kelbauskas, Laimonas ;
Chan, Samantha ;
Shetty, Rishabh M. ;
Smith, Dean ;
Meldrum, Deirdre R. .
OPTICS AND LASERS IN ENGINEERING, 2017, 92 :70-75
[4]   Holographic optical tweezers obtained by using the three-dimensional Gerchberg-Saxton algorithm [J].
Chen, Hao ;
Guo, Yunfeng ;
Chen, Zhaozhong ;
Hao, Jingjing ;
Xu, Ji ;
Wang, Hui-Tian ;
Ding, Jianping .
JOURNAL OF OPTICS, 2013, 15 (03)
[5]   Holographic Optical Tweezers: Techniques and Biomedical Applications [J].
Chen, Hui-Chi ;
Cheng, Chau-Jern .
APPLIED SCIENCES-BASEL, 2022, 12 (20)
[6]   Dynamic holographic optical tweezers [J].
Curtis, JE ;
Koss, BA ;
Grier, DG .
OPTICS COMMUNICATIONS, 2002, 207 (1-6) :169-175
[7]   Optical tweezers across scales in cell biology [J].
Favre-Bulle, Itia A. ;
Scott, Ethan K. .
TRENDS IN CELL BIOLOGY, 2022, 32 (11) :932-946
[8]  
GERCHBERG RW, 1972, OPTIK, V35, P237
[9]   Large-scale uniform optical focus array generation with a phase spatial light modulator [J].
Kim, Donggyu ;
Keesling, Alexander ;
Omran, Ahmed ;
Levine, Harry ;
Bernien, Hannes ;
Greiner, Markus ;
Lukin, Mikhail D. ;
Englund, Dirk R. .
OPTICS LETTERS, 2019, 44 (12) :3178-3181
[10]   3D manipulation of particles into crystal structures using holographic optical tweezers [J].
Leach, J ;
Sinclair, G ;
Jordan, P ;
Courtial, J ;
Padgett, MJ ;
Cooper, J ;
Laczik, ZJ .
OPTICS EXPRESS, 2004, 12 (01) :220-226