Português

Enlightra and DESY Hamburg developed an improved and scalable comb laser

492
2024-01-26 13:49:54
Ver tradução

Laser technology startup Enlightra collaborates with DESY Hamburg to develop and design more stable and efficient comb lasers. This work demonstrates a microresonator with programmable synthetic reflection, providing tailored injection feedback for driving lasers. This technology has significantly improved compared to traditional self injection locking technology and can be produced using standard lithography.

A comb laser is a multi color light source with an equidistant range of 100 GHz to 1 THz. This technology has high value for the data required for artificial intelligence applications in optical communication.

One of the key aspects of the practicality of comb lasers is their color purity. Although lasers appear to have very pure colors, in most cases, the beam is composed of many very similar colors with different tones. In applications such as optical communication, it is hoped that a laser can emit many very pure different colors. This is where comb lasers come in handy.

Self injection locking has always been a standard method to improve the purity of comb lasers. This method uses a ring resonator to filter out noise. Through Rayleigh backscattering, light is reflected back from random defects within the ring and sent back to the laser for injection locking.

"The problem with relying on random defects is that they can rely on color, and they are not very strong," said John Jost, co-founder of Englightra and one of the authors of the paper. "There are some limitations, and you would like to send more light back to the laser, as this is very helpful for injection locking."

One of the main advances in this study is the design of how light scatters inward and backward in a ring resonator. They achieved this goal by designing the inner surface of the ring, which only strongly scatters a specific color. Jost told Photonics Media that when light moves around the ring, it feels the pattern and can send more light than usual for injection locking. The author conducted various tests using different customized nanostructured ring resonators. They use semiconductor laser tubes to dock and couple to photonic chips with ring resonators. This technology has been demonstrated in the C-band, but it is equally effective in all telecommunications frequency bands. The actual resonator is embedded in the integrated photonic chip, with a silicon nitride photonic crystal ring resonator embedded in the silicon dioxide cladding.

"The photonic integrated circuits used in this work were manufactured in industrial foundries, so the technology is ready to scale up," Jost said. "The ability to design light scattering has opened a whole new door to more advanced designs, allowing us to customize comb shaped laser spectra to our needs in an unprecedented way."

Laser can be combined with various photonic integrated circuits. For example, it can support fast optical I/O units or optical field programmable gate arrays. This technology will benefit data intensive applications such as generative artificial intelligence, as well as new types of decomposed computers and memory architectures.

According to Jost, he and his team have more ideas than they may have tried.
The study was published in Nature Photonics.

Source: Laser Net

Recomendações relacionadas
  • Research on High Strength and High Toughness TC11 Titanium Alloy with Multi Laser Coaxial Wire Feeding and Directed Energy Deposition

    Researchers from Huazhong University of Science and Technology, AVIC Xi'an Aircraft Design and Research Institute, AVIC Xi'an Aircraft Industry Group Co., Ltd., Shanghai Aerospace Equipment Manufacturing General Factory Co., Ltd., State Key Laboratory of Aircraft Control Integration Technology, Beijing Xinghang Electromechanical Equipment Co., Ltd. and Nanjing Yingigma Automation Co., Ltd. reporte...

    05-14
    Ver tradução
  • Launching the world's strongest laser at a cost of 320 million euros

    Beijing, April 1st (Reporter Liu Xia) - The world's most powerful laser has been activated recently. On March 31st, the Physicist Organization Network reported that the system can enable laser pulses to reach a peak of 10 terawatts (1 terawatt=100 terawatts=1015 watts) within 1 femtosecond (1000 trillions of a second), which is expected to promote revolutionary progress in multiple fi...

    2024-04-03
    Ver tradução
  • Narrow band tunable terahertz lasers may change material research and technology

    A group of researchers from the Max Planck Institute for Material Structure and Dynamics in Germany explored the effect of manipulating the properties of quantum materials far from equilibrium through customized laser drivers. They found a more effective method to create previously observed metastable superconducting states in fullerene based materials using lasers.By tuning the light source to 10...

    2023-11-21
    Ver tradução
  • Each unit of metamaterials used for simulating optical calculations is smaller than the wavelength of the light they are designed to manipulate

    The new architecture based on metamaterials provides a promising platform for constructing large-scale production and reprogrammable solutions that can perform computational tasks using light.The idea of simulating computers - a device that uses continuous variables instead of zero sum ones - may evoke outdated machinery, from mechanical watches to bomb sight devices used in World War II. But emer...

    2024-03-30
    Ver tradução
  • BLM Launches Tunable 4kW Five Axis Laser Cutting System

    Recently, the Italian laser pipe processing group BLM Group announced the launch of an LT-Free five axis laser cutting system that can be used for laser cutting and processing of any three-dimensional metal profile, including bending forming, hydraulic forming, extrusion forming, deep drawing forming, flat or stamped forming of pipe fittings or plates.This five axis laser cutting system can provid...

    2023-10-11
    Ver tradução