日本語

Commitment to achieving 100 times the speed of on-chip lasers

374
2023-11-13 14:43:08
翻訳を見る

Although lasers are common in daily life, their applications go far beyond the scope of light shows and barcode reading. They play a crucial role in telecommunications, computer science, and research in biology, chemistry, and physics. In the latter field, lasers that can emit extremely short pulses are particularly useful, approximately one trillionth of a second or less.

By operating these lasers on such a time scale, researchers can study the rapid occurrence of physical and chemical phenomena.
For example, the generation or breaking of molecular bonds during chemical reactions, or the movement of electrons within a material. These ultra short pulses are also widely used in imaging applications because they can have extremely high peak intensity but low average power, thereby avoiding heating or even burning samples such as biological tissues.

A New Method for Manufacturing Ultrafast Lasers
In an article in the journal Science, Alireza Marandi, an assistant professor of electrical engineering and applied physics at the California Institute of Technology, described a new method developed by his laboratory for manufacturing this type of laser on photonic chips, called a mode-locked laser.

Lasers are manufactured using nanoscale components that can be integrated into optical based circuits similar to those found in modern electronics based on electrical integrated circuits.

Ultra fast laser for research
This type of ultrafast laser is so important for research that this year's Nobel Prize in Physics was awarded to three scientists in recognition of their development of lasers that generate attosecond pulses.

On the other hand, these lasers are currently very expensive and bulky, and Alireza Marandi pointed out that he is exploring ways to achieve this time scale on chips that can be several orders of magnitude cheaper and smaller in size, with the aim of developing affordable and deployable ultrafast optonics technologies.

in summary
Ultra fast lasers are crucial for research and industry, but their cost and size remain the main obstacles. The work of Professor Marandi and his team aims to overcome these challenges by developing mode-locked lasers on photonic chips, making these technologies easier to obtain and more affordable. Their research can pave the way for new applications in various fields, from basic research to industry.

To better understand
What is ultrafast laser?
An ultrafast laser is a type of laser that can emit extremely short pulses, approximately one trillionth of a second (one picosecond) or shorter. These lasers are particularly useful in biological, chemical, and physical research and can be used to study rapidly occurring phenomena.

Why is ultrafast lasers important for research?
Ultra fast lasers enable researchers to study extremely fast physical and chemical phenomena, such as the generation or breaking of molecular bonds during chemical reactions, or the movement of electrons within materials. They are also widely used in imaging applications because they can have extremely high peak intensity but low average power, thereby avoiding heating or even burning samples such as biological tissues.

What is a mode-locked laser?
A mode-locked laser is an ultra fast laser that can be manufactured on photonic chips. These lasers are made of nanoscale components that can be integrated into optical based circuits similar to those found in modern electronic products based on electrical integrated circuits.

What are the advantages of ultrafast lasers on chips?
Compared with traditional ultrafast lasers, on-chip ultrafast lasers can be several orders of magnitude cheaper and have a smaller volume, making them easier to use in research and industry. In addition, they can also be combined with other components to build complete ultrafast photonics systems on integrated circuits.

What are the future goals of ultrafast laser chips?
The goal of the researchers is to improve this technology so that it can operate at shorter time scales and higher peak power. The goal is to achieve 50 femtoseconds, which will be 100 times higher than the current device that generates 4.8 picosecond pulses.

Source: Laser Network

関連のおすすめ
  • LPKF 2024 H1 revenue up 15% year-on-year

    Recently, LPKF Laser, a leading supplier of innovative laser solutions in Germany, released its performance report for the first half of the 2024 fiscal year as of June 30, demonstrating the company's steady performance and forward-looking layout in a complex market environment. According to the financial report, LPKF Laser&Electronics SE achieved significant growth in comprehensive revenue ...

    2024-07-31
    翻訳を見る
  • Leica Cine 1 laser TV with 4K display screen launched with a starting price of $8995

    Photography brand Leica has launched its first 4K movie and television. The Leica Cine 1 laser TV was announced a year later during the I FA 2022 period. This iconic photography brand is shifting some of its focus to projecting perfect images in our living room.featureThe Leica Cine 1 laser TV embodies Leica's philosophy in its camera design. Leica continues to provide precision optical engineerin...

    2023-10-19
    翻訳を見る
  • Hyperspectral imaging technology: a comprehensive guide from principles to applications

    Hyperspectral imaging technology is a highly anticipated innovation in the field of science and engineering today. It not only integrates spectroscopy and imaging technology, but also has wide applications in various industries and research fields. This article will delve into the basic principles, working mechanisms, and applications of hyperspectral imaging in different fields.Introduction to hy...

    2024-04-16
    翻訳を見る
  • Progress in Research on Transparent Ceramics for 3D Printing Laser Illumination at Shanghai Institute of Optics and Mechanics

    It is reported that the Research Center for Infrared Optical Materials of the Chinese Academy of Sciences Shanghai Institute of Optics and Fine Mechanics has made progress in the research of additive manufacturing (3D printing) transparent ceramics for laser illumination.Recently, the Research Center for Infrared Optical Materials of the Shanghai Institute of Optics and Precision Mechanics, Chines...

    2023-10-17
    翻訳を見る
  • 2D photoelectric neuron array can achieve broadband and low loss optical nonlinearity accessible to ambient light

    Light can calculate functions during propagation and interaction with structured materials, with fast speed and low energy consumption. The use of all optical neural networks for general computing requires an optical activation layer with nonlinear dependence on the input. However, existing optical nonlinear materials either have slow speeds or very weak nonlinearity at the level of natural light ...

    2024-03-20
    翻訳を見る