Türkçe

Researchers use non classical light to achieve multi photon electron emission

201
2024-05-20 15:23:40
Çeviriyi gör

Strong field quantum optics is a rapidly emerging research topic that integrates nonlinear optoelectronic emission elements rooted in strong field physics with the mature field of quantum optics. Although the distribution of light particles (i.e. photons) has been widely recorded in both classical and non classical light sources, the impact of this distribution on the photoelectric emission process is still poorly understood.

Researchers from Friedrich Alexander University (FAU) in Erlangen Nuremberg and the Max Planck Institute for Photoscience have recently begun exploring the interaction between light and matter through non classical light sources to fill this gap in the literature. Their paper published in the journal Nature Physics suggests that the photon statistics driving the light source are printed on the electron count statistics emitted by metal needle tips, and this observation may have interesting implications for the future development of optical devices.

The co-author and FAU researcher Jonas Heimerl of the paper told Phys.org, "The field of strong field physics has now been highly developed, as evidenced by the Nobel Prize in Physics in 2023." "This physical phenomenon is not limited to atoms, but also occurs on metal surfaces, such as metal needles. A similar and more diverse development is in the field of quantum optics. One aspect of this field is the use of non classical light statistics to generate light, such as bright compressed vacuum."

The main objective of Heimer and his collaborators' latest research is to understand how quantum light originating from non classical light sources interacts with matter. It is worth noting that so far, only classical light sources have been used to explore the interaction between quantum light and matter.

"Our neighbor Professor Maria Chekhova is a world leading expert in the field of bright compressed vacuum generation, a special form of non classical light," co author and FAU researcher Peter Hommelhoff told Phys Org. "Therefore, we collaborated with her and Ido Kaminer, a long-term partner at the Israel Institute of Technology, to study electron emission driven by non classical light."

Heimer, Homerhoff, and their research team at FAU collaborated closely with researcher Chekhova, who has extensive expertise in the field of quantum optics, to conduct experiments. Chekhova is known for her work in the generation of bright compressed vacuum, which requires the use of nonlinear optical processes to generate bright compressed vacuum (a type of non classical light).

"In our experiment, we used this non classical light source to trigger the photoelectric emission process of a metal needle tip with a size of only a few tens of nanometers," explained Heimer. "It can be regarded as Einstein's famous photoelectric effect, but modern light sources exhibit extreme intensity and fluctuations within each laser pulse."

For each laser pulse generated, researchers calculated the number of electrons in both classical and non classical light sources. Interestingly, they found that the number of electrons can be directly influenced by the driving light.

"Our findings may be of great interest to people, especially for electronic imaging applications such as biomolecular imaging," said Heimer
As is well known, biomolecules are highly susceptible to damage, and reducing the electron dose used for imaging these molecules can reduce the risk of such damage. Heimerl et al.'s paper. It is possible to modulate the number of electrons to meet the specific application requirements.
"However, before we can solve this problem, we must prove that we can also imprint another type of photon distribution on electrons, which is the photon distribution with reduced noise, but this may be difficult to achieve," said Homelhoff.

The discovery of this latest work may soon bring new opportunities for the study of strong field quantum optics. Meanwhile, they can serve as the foundation for new devices, including sensors and strong field optical devices that utilize the interaction between quantum light and electrons.

Source: Laser Net

İlgili öneriler
  • Progress in research on intrinsic flexible and stretchable optoelectronic devices in the Institute of Chemistry

    Organic polymer semiconductor materials, due to their unique molecular structure and weak van der Waals interactions, are endowed with the characteristics of soluble processing and easy flexibility, and have potential applications in portable and implantable medical monitoring devices. A highly flexible, skin conformal, and excellent spatial resolution X-ray detector is expected to be integrated w...

    2024-04-09
    Çeviriyi gör
  • Han's Laser wins multiple lithium battery projects

    Recently, relevant information shows that Shenzhen Han's Lithium Battery Intelligent Equipment Co., Ltd. (referred to as Han's Lithium Battery) has won the bid for the solid-state battery pilot line testing section process equipment project and solid-state battery pilot line assembly section process equipment project of Dongfeng Hongtai Holdings Group Co., Ltd. The winning bid amounts are 9.3847 m...

    2024-09-28
    Çeviriyi gör
  • German research institute develops a new nanosecond laser process

    Recently, the Fraunhofer Institute (HHI) has developed a technology for processing aluminum alloy materials using reactive gas assisted nanosecond lasers, which can be used to produce electronic box samples for spacecraft manufacturing. This development project is part of the NanoBLAST project, in close collaboration with thermal engineering company Azimut Space GmbH, aimed at manufacturing surfac...

    2024-09-10
    Çeviriyi gör
  • Three core processes of laser soldering support the development of PCB electronics industry

    In the field of modern electronic manufacturing, PCB (printed circuit board) serves as the carrier of electronic components. In its manufacturing process, laser soldering technology has become a key link in PCB electronic manufacturing due to its advantages of high precision, high efficiency, and low thermal impact. This article will explore the application of laser soldering technology and its ma...

    2024-04-15
    Çeviriyi gör
  • Targeting military laser technology! Two major enterprises plan to establish a joint venture company

    Latest news: Rheinmetall and European Missile Group Germany plan to establish a joint venture to develop shipborne laser weapons.The cooperation between the two companies in the field of military laser technology has been ongoing for several years. In 2022 and 2023, under the framework of the High Energy Marine Laser Demonstration Working Group (ARGE), the jointly developed laser was successfully ...

    01-15
    Çeviriyi gör