Français

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

861
2023-09-01 14:00:44
Voir la traduction

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

Recommandations associées
  • Germany's TRUMPF launches 50000 watt fiber laser

    TRUMPF will launch a new generation of efficient fiber lasers at the Munich Light Expo in Germany, which can meet the diverse welding needs of the entire industry, such as high-precision welding of electric vehicle batteries. Tom Rentschler, Product Manager of TRUMPF Fiber Laser, said, "The new generation TruFiber laser is the core engine of our production solutions. Through deep collaboration wit...

    06-20
    Voir la traduction
  • Vigo University School of Technology invents laser glass recycling system

    LaserON, a laser industrial application group at the University of Vigo, is leading a European project that aims to revolutionize the glass recycling process by developing a new technology called glass laser conversion, so that everyone can recycle at home. This group is led by Professor Juan Pou and Professor Rafael Comesa ñ a, and is part of Cintecx, leading EverGlass. Its partners come f...

    2024-01-19
    Voir la traduction
  • It is said that laser additive manufacturing is good, but what is the advantage?

    When it comes to additive manufacturing, some people may not have heard of it, but when it comes to its other name: 3D printing, no one is unaware.In fact, the name 'additive manufacturing' better illustrates the essence of this processing method. From ancient times to the present, humans have put in great effort to achieve the goal of processing 'raw materials into the shapes we need'. From the S...

    2023-11-08
    Voir la traduction
  • 国内自主研发首套碳化硅晶锭激光剥离设备投产

           近日,从江苏通用半导体有限公司传来消息,由该公司自主研发的国内首套的8英寸碳化硅晶锭激光全自动剥离设备正式交付碳化硅衬底生产领域头部企业广州南砂晶圆半导体技术有限公司,并投入生产。 图:8英寸SiC晶锭激光全自动剥离设备       该设备可实现6英寸和8英寸碳化硅晶锭的全自动分片,包含晶锭上料、晶锭研磨、激光切割、晶片分离和晶片收集,一举填补了国内碳化硅晶锭激光剥离设备领域研发、制造的市场空白,突破了国外的技术封锁,将极大地提升我国碳化硅芯片产业的自主化、产业化水平。       该设备年可剥离碳化硅衬底20000片,实现良率95%以上,与传统的线切割工艺相比,大幅降低了产品损耗,而设备售价仅仅是国外同类产品的1/3。       近年来,碳化硅功率器件在大功率半导体市场中所占的份额不断提高,并被广泛应用于新能源汽车、城市轨道交通、风力发电、高速移动、物联网等一系列领域...

    2024-08-26
    Voir la traduction
  • The University of Rochester has received nearly $18 million to build the world's highest power laser system

    After receiving a $14.9 million contract from the US Department of Defense (DOD) last month to study the pulse laser effect, the University of Rochester recently received nearly $18 million in funding from the National Science Foundation (NSF) for the key technology design and prototype of the EP-OPAL, also known as the OMEGA EP coupled optical parametric amplifier line (OPAL).EP-OPAL is a new fac...

    2023-09-28
    Voir la traduction