Português

The LANL laboratory in the United States uses quantum light emitters to generate single photon light sources

481
2023-09-01 14:00:44
Ver tradução

Recently, the Los Alamos National Laboratory (LANL) in the United States has developed a method for quantum light emitters, which stacks two different atomic thin materials together to achieve a light source that generates circularly polarized single photon streams. These light sources can also be used for various quantum information and communication applications.

According to Han Htoon, a researcher at Los Alamos, this work shows that single-layer semiconductors can emit circularly polarized light without the need for an external magnetic field.

Previously, this effect could only be achieved through the high magnetic field generated by bulky superconducting magnets, coupling quantum emitters to very complex nanoscale photonic structures, or injecting spin polarized charge carriers into quantum emitters. Our proximity effect method has the advantages of low manufacturing cost and high reliability.

Polarization is a means of encoding photons, therefore this achievement is an important step in the direction of quantum cryptography or quantum communication. With a light source that generates a single photon stream and introduces polarization, we basically merge the two devices into one.

The research team stacked a single molecule thick layer of tungsten selenide semiconductor onto a thicker layer of nickel phosphorus trisulfide magnetic semiconductor. Using atomic force microscopy, the research team created a series of nanoscale indentations on thin layer materials.

When the laser is focused on the material pile, the 400 nanometer diameter indentation generated by the atomic microscope tool has two effects. Firstly, the indentation forms a "well" or "depression" in the potential energy landscape. The electrons of the tungsten selenide monolayer fall into the depression. This stimulates the emission of a single photon from the well.

Nanoindentation also disrupts the typical magnetic properties of the underlying nickel phosphorus trisulfide crystal, generating local magnetic moments pointing outward from the material. This magnetic moment circularly polarizes the emitted photons. In order to experimentally confirm this mechanism, the team first collaborated with the pulse field facility of the Los Alamos National High Magnetic Field Laboratory to conduct high magnetic field spectroscopy experiments. Then, the team collaborated with the University of Basel in Switzerland to measure the tiny magnetic field of the local magnetic moment.

The team is currently exploring methods to adjust the degree of circular polarization of single photons through electronic or microwave stimulation. This capability will provide a method for encoding quantum information into photon streams. Further coupling between photon flow and waveguide will provide photon circuits, allowing photons to propagate in one direction. This circuit will become a fundamental component of the ultra secure quantum internet.

Source: OFweek

Recomendações relacionadas
  • 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
    Ver tradução
  • Scientists use glass to create femtosecond lasers

    Image source: Federal Institute of Technology in Lausanne, SwitzerlandScience and Technology Daily, Beijing, September 27th (Reporter Zhang Jiaxin) Commercial femtosecond lasers are manufactured by placing optical components and their mounting bases on a substrate, which requires strict alignment of optical components. So, is it possible to manufacture femtosecond lasers entirely from glas...

    2023-09-28
    Ver tradução
  • Overview of ultrafast laser micro nano manufacturing technology: material processing, surface/interface control, and device manufacturing

    Researchers from Tsinghua University have summarized the research on ultrafast laser micro nano manufacturing technology, including material processing, surface/interface control, and device manufacturing. The relevant review titled "A Review of Ultrafast Laser Micro/Nano Fabric: Material Processing, Surface/Interface Control, and Device Fabric" was published in Nano Research.Ultra fast laser proc...

    2024-08-06
    Ver tradução
  • LASER World of PHOTONICS CHINA- 20th Anniversary Celebration Coming Soon!

    The Annual Grand Event for the Laser, Optics, and Optoelectronics Industry in AsiaLASER World of PHOTONICS CHINA20th Anniversary Celebration Coming Soon!📅 March 11-13📍 Shanghai New International Expo Centre (SNIEC), Entrance Hall 3🏢 Halls: N1-N5, E7-E4💡 1,400+ exhibitors across over 100,000 square meters Visitor Opening HoursDay 1: March 11 (Tuesday) 9:00 - 17:00Day 2: March 12 (Wednesday)...

    03-10
    Ver tradução
  • Innoviz Technologies, a publicly listed laser radar company, has laid off approximately 9% of its workforce

    On February 5, 2025, Innoviz Technologies, an Israeli laser radar listed company, announced operational optimization measures to extend the duration of the company's cash reserve usage and accelerate profitability and free cash flow generation. To maximize efficiency, the company will reduce investment in developing mature areas. These measures will result in a reduction of approximately 9% in the...

    02-07
    Ver tradução