Português

Photonic time crystals triggered by laser pulses may open the door to a new branch of optics

230
2023-09-07 15:09:14
Ver tradução

When scientists discovered that laser pulses can rapidly cause refractive index changes in the medium, resulting in "photonic time crystals (PTC)" in the near-visible light band, the door to a disruptive new application in optics seemed to quietly open.

Scientists have a certain degree of understanding of photonic crystals and time crystals, the two have almost nothing in common, the basic common point is that both will produce structures over time.

Photonic crystals are artificial periodic dielectric structures, which are periodically arranged by media of different refractive indices, and can block photons of specific frequencies and then affect photon motion. In other words, the periodic dielectric structures with "photonic frequency bandgap" are called photonic crystals. In addition, there are photonic crystals in nature, which can be seen from the flickering of insect wings or precious minerals.

A time crystal is a quantum system composed of repeated motions of particles in the lowest energy state. Compared with regular crystals that repeat periodically in space, time crystals will repeat periodically in time and show a permanent state, for example, they change with time, but they will always return to the original state.

Photonic time crystals are materials whose electromagnetic properties change greatly with time, or represent a specific type of time crystal, whose refractive index rises and falls rapidly with time, and there is more than one type of photonic time crystal.

It is proved that stable photonic time crystals can also exist in near visible wavelengths

In order to maintain the stability of photonic time crystals, the refractive index must be made to rise and fall in line with the single period of electromagnetic waves of a specific frequency, so far scientists have only observed photonic time crystals at the lowest frequency end of the electromagnetic spectrum (radio waves), and it is quite challenging to find photonic time crystals in the optical field.

But according to new research led by Technion Israel scientist Mordechai Segev, Purdue University scientists Vladimir Shalaev, AlexndraBoltasseva and others, the team sent laser pulses with a wavelength of 800 nanometres through transparent conductive oxides (TCO), It was found that the time required for each refractive index change was very short (less than 10 femtoseconds), constituting the single period required to form a stable PTC.

Normally, electrons excited to high energies in a time crystal take 10 times more time to return to the ground state, but this experiment found that the relaxation time of light (the time required for the refractive index to return to normal) is extremely short, basically "impossible things."

It is not yet clear why this happens or how it will eventually be applied, but it could lead to breakthroughs in optics, just as physicists in the 1960s began to discover what practical applications laser beams could bring, perhaps in highly efficient laser-based particle accelerators or highly sensitive particle detectors with adjustable angular resolution.

The new paper is published in the journal Nanophotonics.

Source: Laser Network

Recomendações relacionadas
  • New insights into the interaction between femtosecond laser and living tissue

    The N-linear optical microscope has completely changed our ability to observe and understand complex biological processes. However, light can also harm organisms. However, little is known about the mechanisms behind the irreversible disturbances of strong light on cellular processes.To address this gap, the research teams of Hanieh Fattahi and Daniel Wehner from the Max Planck Institute for Photos...

    2024-06-07
    Ver tradução
  • New type of "dynamic static dual sensing" charge coupled phototransistor

    With the development of cutting-edge technologies such as automatic guidance and embodied intelligence, machine vision has put forward higher requirements for image acquisition, requiring precise recording of static images and the ability to sensitively capture dynamic changes in the scene. The existing dynamic and active pixel sensor technology integrates two functions: dynamic event detection an...

    04-17
    Ver tradução
  • Real time measurement of femtosecond dynamics of relativistic intense laser driven ultra-hot electron beams

    In the interaction between ultra short and ultra strong lasers and matter, short pulse width and high energy electrons are generated, commonly referred to as "hot electrons". The generation and transport of hot electrons is one of the important fundamental issues in high-energy density physics of lasers. Superhot electrons can excite ultrafast electromagnetic radiation in a wide range of wavelengt...

    2024-06-21
    Ver tradução
  • Emerging laser technologies for precise manufacturing of multifunctional nanomaterials and nanostructures

    The use of photons to directly or indirectly drive chemical reactions has fundamentally changed the field of nanomaterial synthesis, leading to the emergence of new sustainable laser chemistry methods for manufacturing micro - and nanostructures. The incident laser radiation triggers complex interactions between chemical and physical processes at the interface between solid surfaces and liquid or ...

    2024-08-05
    Ver tradução
  • TroGroup announces acquisition of Luxinar Ltd.

    Recently, TroGroup, a family owned laser giant operating globally in Austria, announced a major strategic move - the successful acquisition of Luxinar Ltd., a leading laser source manufacturer based in Hull, UK. This move marks a new level of TroGroup's technological leadership in the field of laser sources.Through this acquisition, Luxinar, with its approximately 200 elite team and over 25 years ...

    2024-08-03
    Ver tradução