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Coaxial double-ring three-core fiber cell laser with stretching function

A three-core optical fiber and double-ring technology, which is applied to lasers, laser components, phonon exciters, etc., can solve problems such as large volume, difficulty in keeping the fiber surface clean for a long time, and inability to accurately couple excitation beams.

Active Publication Date: 2021-04-06
GUILIN UNIV OF ELECTRONIC TECH
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  • Summary
  • Abstract
  • Description
  • Claims
  • Application Information

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Problems solved by technology

[0006] In June 2001, Gather et al. from Harvard University enabled human embryonic kidney cells to emit laser signals (NATUREPHOTONICS, Single-cell biological lasers, 2011, 5:406-410). The excitation light source in the device needs to be focused by the image magnification system. The light spot is reduced to the size of a single cell, and a Fabry-Perot resonant cavity with a space slightly larger than the cell size is bonded by two high-reflection mirrors to limit the cells in the position of the excitation light, so the device is bulky. The direction and position of the spatial excitation light are inconvenient to adjust single cells, and the cells can only be captured by means of external space constraints.
In 2015, Humar et al. from Harvard Medical School developed a variety of cell lasers based on whispering gallery mode microcavities (NATUREPHOTONICS, Intracellular microlasers, 2015, 9:572-576), which proved that lasers can also be realized in natural cells Output, it artificially built a regular circular lipid droplet into the cell as the whispering gallery mode, and the output signal was coupled to the spectral detector through a multimode optical fiber with a core diameter of 200 μm, but the device was large in size, and the optical fiber used for receiving the signal was relatively small. Coarse, due to the inability to accurately capture cells and other micro-manipulation functions, the operation of exciting the beam to irradiate the cells becomes inaccurate, and the small displacement of the cells in the liquid will cause the excitation beam to be unable to be accurately coupled into the lipid droplet, so that the gain signal cannot Continuous enhancement also increases the operational difficulty of the experiment
[0008] The invention patent with the patent number CN201510295509.8 proposes a tunable liquid cell laser. In this patent, two optical fiber optical tweezers are required to capture the cells at the same time, and the optical fiber at one end is output to receive the optical fiber at the other end to collect signal light. ; The invention patent with the patent number CN201510267391.8 proposes a droplet whispering gallery mode laser and its manufacturing method. In this patent, the input light needs to be coupled into the ring core by means of single-mode fiber and ring core fiber fusion tapering. Droplets also need to be in contact with micro-nano optical fibers to transmit signal light; the invention patent with the patent number CN201510271055.0 proposes a multi-wavelength droplet laser. In this patent, multiple droplets need to be excited and detected. The same as the previous patent, each drop needs to be in contact with a micro-nano fiber for output. This method undoubtedly increases the difficulty of the device. As we all know, the size of the micro-nano fiber is only a few microns, and it is extremely susceptible to the influence of the external environment. And it is difficult to keep the surface of the optical fiber clean for a long time, and the patent requires multiple liquid droplets to be linearly arranged, which means that multiple micro-nano optical fibers are required to be linearly distributed. Due to the small size of the liquid droplets, this also affects the experimental operation. made extremely high demands

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  • Coaxial double-ring three-core fiber cell laser with stretching function
  • Coaxial double-ring three-core fiber cell laser with stretching function
  • Coaxial double-ring three-core fiber cell laser with stretching function

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Embodiment

[0055] Example: Laser measurement of single living cells:

[0056] figure 1 It is a device diagram of a coaxial double-ring three-core fiber cell laser system with stretching function. In the laser system: the captured light beam is drawn from the captured light source 2 by a standard single-mode fiber 6, and is divided into two by a 1×2 coupler 3 The light of the road passes through the 4-2 and 4-3 attenuators and the multi-core fiber splitter 8 respectively, and then respectively enters two of the ring cores 9-1 and 9-2 of the coaxial double-ring three-core optical fiber 9 . The excitation beam is drawn from the excitation light source 1 by the standard single-mode optical fiber 6, enters the multi-core fiber splitter 8 through the attenuator 4-1 and the circulator 5, and then enters the intermediate core 9-3 of the coaxial double-ring three-core optical fiber 9 middle. The sample pool is filled with cell-containing liquid and stabilized on the stage 11. The optical fiber ...

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Abstract

The invention provides a coaxial double-ring three-core fiber cell laser system with stretching function. The "fiber-cell" laser is mainly composed of the following four parts: (1) a coaxial double-ring three-core optical fiber with a new structure, the end of which is polished into a rotationally symmetrical multi-angle cone Fiber optical tweezers; (2) Microspherical optical resonant cavity, inside the cavity is a gain medium with optical amplification function; (3) A light source that can provide cells to capture photodynamic forces and a gain medium excitation light source; (4) A detection spectrometer for cell output laser. The output spectrum of the microsphere optical resonant cavity inside the cell is very sensitive to the slight changes of the environmental physical parameters such as the cytosol inside the cell, and can be measured through the amplified laser signal output by the multi-core cone fiber. The invention can be used for single cell capture and cell laser spectrum measurement, and can be widely used in the technical fields of single cell manipulation, sensing, measurement and analysis.

Description

[0001] (1) Technical field [0002] The invention relates to a coaxial double-ring three-core fiber cell laser system with stretching function, which can be used for cell capture, cell laser spectrum measurement and cell laser self-assembly, and is especially suitable for the technical field of single cell manipulation, measurement and analysis . [0003] (2) Background technology [0004] In 1960, American scientist T.H. Maiman and others successfully created the world's first ruby ​​crystal laser. In 1961, A. Jia Wen and others successfully developed a helium-neon laser. In 1962, R.N. Hall and others developed a gallium arsenide semiconductor laser. . The birth of lasers marks that people have the ability to control the emission direction, phase, frequency and polarization of multiple photons, which makes people's understanding and application of light reach a higher level. Lasers have shown unimaginable application value in the direction of miniaturization and interdiscipl...

Claims

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Application Information

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Patent Type & Authority Patents(China)
IPC IPC(8): H01S3/067G02B21/32G01N21/41G01N21/25G01N21/01
CPCG01N21/01G01N21/25G01N21/41G02B21/32H01S3/06708
Inventor 苑婷婷张晓彤苑立波
Owner GUILIN UNIV OF ELECTRONIC TECH
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