Polski

The First Operation of Two Color Mode in Infrared Free Electron Laser

250
2024-02-18 10:10:09
Zobacz tłumaczenie

The Fritz Haber Institute of the Max Planck Institute in Berlin has achieved a technological milestone. The infrared free electron laser operates in dual color mode for the first time. This globally unique technology makes it possible to conduct experiments on synchronous dual color laser pulses, opening up new possibilities for research.

There are over a dozen free electron lasers worldwide, with significant differences in size, wavelength range, and cost. However, they all generate strong short radiation pulses. In the past few decades, free electron lasers have become an important radiation source and have been widely applied in basic research and applied science.

FHI researchers have now collaborated with American partners to develop a method that can simultaneously generate two different colored infrared pulses. This innovation is particularly important for studying the temporal processes of solids and molecules.

In FEL, the electron beam is first accelerated by an electron accelerator to a very high kinetic energy, reaching a speed close to the speed of light. Then, the fast electrons pass through a undulator, where they are forced into a path similar to a turbulent vortex by a strong magnetic field with periodic changes in polarity.

The oscillation of electrons leads to the emission of electromagnetic radiation, and its wavelength can be changed by adjusting the electron energy and/or magnetic field strength. For this reason, FEL can be used to generate laser like radiation in almost all parts of the electromagnetic spectrum, ranging from long terahertz to short X-ray wavelengths.

Since 2012, FEL has been operating at FHI, generating strong pulsed radiation in the mid infrared range, with wavelengths continuously adjustable in the range of 2.8 to 50 micrometers. In recent years, scientists and engineers at FHI have been dedicated to dual color expansion, installing a second FEL branch to generate far-infrared radiation with wavelengths between 5 and 170 microns.

The FIR-FEL branch includes a new hybrid magnet wave generator, which was specifically built at FHI. In addition, a 500 MHz kick chamber is installed behind the electron linear accelerator for lateral electron deflection. The kicking chamber can change the direction of high-energy electron beams at a speed of 1 billion times per second.

In June 2023, the FHI team demonstrated the first "laser" of the new FIR-FEL, guiding all electron beams from LINAC to FIR-FEL. In December 2023, they demonstrated the dual color operation for the first time. In this mode, the strong oscillating electric field formed in the kicking chamber causes every two electron beams to deflect to the left and every other electron beam to deflect to the right.

In this way, the high repetition rate electron beam from LINAC is divided into two beams, with each beam having half the repetition rate; One is guided to the old MIR-FEL, and the other is guided to the new FIR-FEL. In each FEL, changing the magnetic field intensity of the oscillator can continuously tune the wavelength up to four times.

For about a decade, FHI-FEL has enabled FHI's research team to conduct experiments on nonlinear solid-state spectroscopy and surface science from the spectra of clusters, nanoparticles, and biomolecules in the gas phase. To date, there have been approximately 100 peer-reviewed publications.

The new dual color mode is not available in any other IR FEL facility worldwide, and it will enable new experiments such as MIR/MIR and MIR/FIR pump probe experiments. This is expected to open up new opportunities for experimental research in different fields such as physical chemistry, materials science, catalytic research, and biomolecular research, thereby contributing to the development of new materials and drugs.

Source: Laser Net

Powiązane rekomendacje
  • The semiconductor laser market is expected to reach $5.3 billion by 2029

    Nowadays, laser technology is widely used in various traditional and emerging fields, including optical communication, material processing, consumer equipment, automotive sensing and lighting, display technology, medical applications for treatment and diagnosis, as well as aerospace and defense.Especially in the semiconductor laser market, it is expected to grow from $3.1 billion in 2023 to $5.2 b...

    2024-12-03
    Zobacz tłumaczenie
  • Enhanced dielectric, electrical, and electro-optic properties: investigation of the interaction of dispersed CdSe/ZnS quantum dots in 8OCB liquid crystals in the intermediate phase

    authorElsa Lani, Aloka SinhaabstractAt present, the progress in developing new liquid crystal materials for next-generation applications mainly focuses on improving the physical properties of liquid crystal systems.Recent research progress has shown that functionalized nanoparticles embedded in LC matrix can significantly alter the properties of LC materials based on the interaction between host m...

    2024-03-04
    Zobacz tłumaczenie
  • Lumentum Holdings changes CEO

    On February 3, 2025, Lumentum Holdings has appointed Michael Hurlston as its President, CEO, and Director, effective from February 7. Hurlston replaces Alan Lowe, who has been serving as the company's President and CEO since 2015. Lowe will continue to serve as a member of Lumentum's board of directors and as a consultant to the company.Lumentum is a major supplier of high-speed optical transceive...

    02-06
    Zobacz tłumaczenie
  • Beijing Institute of Technology has made significant progress in the study of ultrafast carrier dynamics in optoelectronic functional crystals

    Recently, teachers and students from the Institute of Solid State Laser and Ultrafast Photonics at the School of Physics and Optoelectronic Engineering have made significant progress in the study of ultrafast carrier dynamics in optoelectronic functional crystals. The related research results are titled "Anisotropic carrier dynamics and laser fabricated luminosity patterns on oriented single cryst...

    2024-02-21
    Zobacz tłumaczenie
  • MIT research enables 3D printers to recognize new materials

    According to scientists at MIT, mathematical formulas developed by MIT researchers and other institutions can significantly improve the sustainability of 3D printing.Issues with 3D printing of plastics3D printers typically use mass-produced polymer powders to print parts, which are consistent and predictable, but also difficult to recycle.Other more environmentally friendly options also exist and ...

    2024-04-18
    Zobacz tłumaczenie