Optical manipulation based on fusion spliced all-fiber optical tweezers

被引:0
|
作者
Zhang S. [1 ]
Sun J. [1 ]
Xu J. [2 ]
Wang F. [1 ]
Wang C. [1 ]
机构
[1] Shanghai University, School of Mechatronic Engineering and Automation, Shanghai
[2] Shanghai University, Sino-European School of Technology, Shanghai
基金
中国国家自然科学基金;
关键词
capture model; fiber optical tweezers; finite element method simulation; optical trapping; SNG-type probe;
D O I
10.1117/1.OE.63.6.066102
中图分类号
学科分类号
摘要
We proposed and experimentally validated an all-fiber probe based on the fusion splicing of multiple fibers, designed to capture the cells or microparticles. Introducing the 980 nm laser into the optical fiber and shaping the beam with the probe, which was fabricated by coaxially splicing the no-core fiber (NCF) with the graded-index (GRIN) fiber onto the single-mode fiber (SMF), created a light trap. (We took the first letters of three types of fibers and named it SNG probe.) The focusing effect of the Gaussian beam was tuned by matching the lengths of the NCF and GRIN to achieve optical trapping of particles. We simulated the optical field of the SNG all-fiber optical tweezers (AFOTs) and the dynamic force distribution of microparticles at different positions within the optical field. We also developed a numerical analytical model of the OTs to analyze the effect of fiber length on the capture performance. The output optical field distribution of the SNG AFOTs was experimentally tested, confirming the capability of this fiber tweezer for non-contact and long-distance capture of yeast cells (more than 240 μm). This type of OTs has the potential to advance relevant research in biology and chemistry. © 2024 Society of Photo-Optical Instrumentation Engineers (SPIE).
引用
收藏
相关论文
共 50 条
  • [21] MATRIX ALGEBRA FOR ALL-FIBER OPTICAL RESONATORS
    SANCHEZ, F
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 1991, 9 (07) : 838 - 844
  • [22] All-fiber optical gyroscopes on orthogonal polarizations
    Andronova I.A.
    Gelikonov V.M.
    Gelikonov G.V.
    Radiophysics and Quantum Electronics, 1998, 41 (11) : 980 - 988
  • [23] All-fiber tunable optical delay line
    Caucheteur, Christophe
    Mussot, Arnaud
    Bette, Sebastien
    Kudlinski, Alexandre
    Douay, Marc
    Louvergneaux, Eric
    Megret, Patrice
    Taki, Majid
    Gonzalez-Herraez, Miguel
    OPTICS EXPRESS, 2010, 18 (03): : 3093 - 3100
  • [24] All-fiber probe for optical coherence tomograpby
    Ryu, Seon Young
    Choi, Hae Young
    Na, Jihoon
    Choi, Woo June
    Lee, Byeong Ha
    COHERENCE DOMAIN OPTICAL METHODS AND OPTICAL COHERENCE TOMOGRAPHY IN BIOMEDICINE XII, 2008, 6847
  • [25] All-fiber thermooptical variable optical attenuator
    Zhang, Yun-Cong
    Chen, Zhe
    Jiang, Pei-Fan
    Liu, Lin-He
    Zeng, Ying-Xin
    Bai, Chun-He
    Zhongguo Jiguang/Chinese Journal of Lasers, 2007, 34 (08): : 1110 - 1114
  • [26] Optical nanofiber integrated into an optical tweezers for particle manipulation and in-situ fiber probing
    Gusachenko, Ivan
    Frawley, Mary. C.
    Truong, Viet. G.
    Chormaic, Sile Nic
    OPTICAL TRAPPING AND OPTICAL MICROMANIPULATION XI, 2014, 9164
  • [27] OPTICAL-SAMPLING USING AN ALL-FIBER OPTICAL KERR SHUTTER
    KITAYAMA, K
    KIMURA, Y
    OKAMOTO, K
    SEIKAI, S
    APPLIED PHYSICS LETTERS, 1985, 46 (07) : 623 - 625
  • [28] All-fiber nonvolatile broadband optical switch using an all-optical method
    Zhang, Yu
    Chen, Jiming
    Liu, Shuai
    Jin, Wei
    Cheng, Siying
    Zhang, Yaxun
    Liu, Zhihai
    Zhang, Jianzhong
    Yuan, Libo
    OPTICS LETTERS, 2022, 47 (14) : 3604 - 3607
  • [29] All-Fiber Optical Waveform Converter Based on Deformed Catenary Nanostructure
    Zhang, Wentao
    Luo, Zhongyue
    Wang, Rui
    Jiang, Xiaowen
    Liu, Houquan
    Deng, Shijie
    Chen, Ming
    Yuan, Libo
    Deng, Hongchang
    ADVANCED PHOTONICS RESEARCH, 2021, 2 (11):
  • [30] An all-fiber optical attenuator based on adjustable coupling angle of microfiber
    Ji, Yancheng
    Chen, Yupei
    Sun, Dan
    Zhang, Guoan
    Wang, Chinhua
    Zhu, Xiaojun
    OPTICS COMMUNICATIONS, 2021, 486