日本語

The Science Island team has made breakthroughs in high pulse energy mid infrared fiber transmission

341
2024-03-23 10:01:04
翻訳を見る

Recently, the Jiang Haihe Research Group of the Health Institute of the Chinese Academy of Sciences Hefei Institute of Materia Medica made important progress in the research of the high-energy pulsed laser transmission system in the mid infrared band, and designed a 78 μ The 6-hole microstructure anti resonant hollow core fiber (AR-HCF) with a larger core diameter achieved efficient transmission of 2.79 at room temperature for the first time μ M-band high-energy pulse laser. The relevant achievements have been published in the internationally renowned optical top journal Optics and Laser Technology.

Laser medical instruments usually require a flexible catheter to transmit the laser emitted to the patient's treatment site, but traditional mid infrared laser medical instruments mostly use a guide arm to transmit the laser. However, the traditional light guide arm transmission method for laser has many problems, such as complex system structure, low transmission efficiency, and insufficient flexibility. The use of fiber optic transmission can solve the above problems, but the material of solid core fiber has a low laser damage threshold in the mid infrared band, which cannot meet the requirements of 3 μ High energy density optical guidance requirements for m-band erbium laser medical devices. So, the research team designed and researched an AR-HCF alternative light guide arm with a simple structure, high coupling transmission efficiency, large damage threshold, and flexible transmission to transmit laser energy.

The team adopts a design with 78 μ A 6-well microstructure AR-HCF with a larger core diameter of m, efficiently transported for the first time under room temperature conditions at 2.79 μ M-band high-energy pulse laser. Without damaging the optical fiber, the average coupling transmission efficiency of the entire region is 77.3%, and the highest coupling transmission efficiency reaches 85% under high beam quality and small coupling energy. If the air absorption attenuation in the fiber core is deducted, the self transmission efficiency of the fiber optic system with this structure has actually exceeded 90%. The system achieved a maximum pulse laser energy output of 11.78 mJ, with a corresponding energy density threshold of 350J/cm2, far exceeding the required value for soft tissue ablation of living organisms. At the same time, the minimum bending radius of the AR-HCF is 20cm and the corresponding loss can meet the clinical needs of surgeons, and the laser beam quality at the output end of the AR-HCF is better than that at the input end, which has been improved significantly.

Compared to other structures and materials currently used for 2.79 μ Compared to optical fibers with m-wavelength transmission, the 6-hole structure AR-HCF of this silica has stronger mechanical stability, higher damage threshold, lower bending sensitivity, and superior transmission performance compared to traditional light guide arms. This study is 2.79 μ M Cr, Er: YSGG medical solid-state laser has opened up a new way for efficient transmission.

Figure 1. Cross section structure of AR-HCF

Figure 2.2.79 μ M AR-HCF space transmission experimental device

Figure 3. Loss of AR-HCF under different bending radii and bending directions

Source: Hefei Institute of Physical Sciences, Chinese Academy of Sciences

関連のおすすめ
  • It is said that laser additive manufacturing is good, but what is the advantage?

    When it comes to additive manufacturing, some people may not have heard of it, but when it comes to its other name: 3D printing, no one is unaware.In fact, the name 'additive manufacturing' better illustrates the essence of this processing method. From ancient times to the present, humans have put in great effort to achieve the goal of processing 'raw materials into the shapes we need'. From the S...

    2023-11-08
    翻訳を見る
  • Additive manufacturing of free-form optical devices for space use

    A group of researchers and companies are using the iLAuNCH Trailblazer program to develop and identify new optical manufacturing processes and materials for space flight applications, and demonstrating them in space cameras.The University of South Australia, together with SMR Australia and VPG Innovation, will utilize an emerging optical manufacturing technology called freeform optics, which is no...

    2023-12-04
    翻訳を見る
  • NSF funding for the world leading EP-OPAL laser multi mechanism design in Rochester

    The National Science Foundation (NSF) of the United States has awarded the University of Rochester nearly $18 million for three years to design and prototype key technologies for EP-OPAL, a new facility dedicated to studying the interaction between ultra-high intensity lasers and matter.After the design project is completed, the facility can be built at the Laser Energy Laboratory (LLE). This fund...

    2023-09-26
    翻訳を見る
  • Progress has been made in the research of phase modulation of terahertz programmable metasurfaces based on free carrier plasmonic dispersion effect

    Recently, the team of Situ Guohai and Guo Jinying from the Aerospace Laser Technology and Systems Department of the Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, and the School of Microelectronics at Shanghai University collaborated to propose a terahertz phase controlled programmable metasurface design scheme based on free carrier plasma dispersion effect. The rela...

    2024-07-26
    翻訳を見る
  • Strategy Networks Utilizes Ekinops for Optical Network Upgrade

    Strata Networks is one of the fastest growing communication cooperatives in Utah, and has chosen Ekinops360 from Ekinops as the platform to upgrade its optical transmission network.Strata is headquartered in Roosevelt, Utah, with a network spanning the Uintah Basin, the Vasatch Front, and Denver. The cooperative continues to expand and improve its fiber optic footprint to differentiate its telepho...

    2023-11-21
    翻訳を見る