Español

Microscopic Marvel photon devices have the potential to completely change the way physics and lasers are processed

351
2024-06-04 15:20:04
Ver traducción

Researchers at Rensselaer Institute of Technology have developed a device that operates at room temperature, which is the first topological quantum simulator to operate under strong light matter interaction mechanisms, making high-tech research easier in cutting-edge ways.

Researchers at Rensselaer Institute of Technology have developed a device no larger than human hair, which will enable physicists to explore the fundamental concepts of matter and light. This study, published in the journal Nature Nanotechnology, can also help researchers develop more efficient lasers that are being used in a range of fields such as medicine and manufacturing.

This device is composed of a specific material called photonic topological insulator, which can guide photons (wave shaped particles formed into light) to specially designed interfaces without dispersing them in the material.

Topological insulators can simulate the behavior of multiple photons in a coherent manner, enabling them to act as micro laboratories to study quantum phenomena at very small scales.

Professor RPI and senior author of Natural Nanotechnology, Wei Bao, pointed out that our photonic topological insulator is a significant breakthrough in the field of fundamental physics. Its unique design allows materials to operate at room temperature, which was previously a challenge due to expensive equipment.

Our progress in energy-saving lasers has led to a seven fold increase in energy demand for room temperature equipment, which is much higher than previously developed low-temperature equipment.
RPI scientists have designed a new mechanism that utilizes the same techniques as in semiconductor manufacturing, involving atomic and molecular layers to create appropriate structures.

Our progress in energy-saving lasers has led to a seven fold increase in energy demand for room temperature equipment, which is much higher than previously developed low-temperature equipment.

RPI scientists have designed a new mechanism that utilizes the same techniques as in semiconductor manufacturing, involving atomic and molecular layers to create appropriate structures.

The device was manufactured by researchers who grew ultra-thin plates of halide perovskite, a crystal containing cesium, lead, and chlorine, and produced a polymer on it. They sandwiched these crystal plates and polymers between thin sheets of different oxide materials to create an object approximately 2 microns thick and 100 microns wide, which is roughly the same length and width as ordinary human hair.

When researchers applied lasers to devices, they observed a triangular pattern that lit up at the interface designed in the material. This mode is caused by the topology characteristics of the laser determined by the device design.

Shekhar Garde, Dean of the RPI School of Engineering, emphasized the prospects of studying quantum phenomena at room temperature.
The study of atmospheric carbon capture in the Mesozoic volcanic regions of central China is the main topic discussed in Nature Nanotechnology. The title of this paper is "The Cohesive Phenomenon in Topological Valley Halls".
Funding from the National Science Foundation and the Office of Naval Research has played an important role in funding this research.

Source: Laser Net

Recomendaciones relacionadas
  • Gooch&Housego successfully acquires Phoenix Optical Technologies

    Recently, renowned precision optical technology manufacturer Gooch&Housego (G&H) announced the successful acquisition of Phoenix Optical Technologies, a precision optical manufacturer located in St. Asaf, Wales, UK. The acquisition transaction amounts to £ 6.75 million, which not only consolidates G&H's market position in the aerospace and defense sectors, but also significantly expa...

    2024-11-04
    Ver traducción
  • Synchrotron X-ray imaging technology

    According to a recent study published in the journal Science Advances, it reveals how early mammals grew and developed during critical periods of their long 'life history'. A research team including Queen Mary University of London used synchrotron X-ray tomography technology to image the growth rings in fossilized tooth roots, in order to infer the lifespan, growth rate, and even sexual maturity t...

    2024-08-15
    Ver traducción
  • The application of lasers in material processing has driven industrial progress in Santa Catalina state

    Laser material processing has been widely used in advanced industries, ranging from designing and producing lightweight, ultra wear-resistant parts and equipment with complex geometric shapes to repairing damaged or worn components through technologies such as 3D printing of deposited metal powders or deposits.Use laser pulses for surface treatment to prevent fatigue. But the impact of such techno...

    2023-09-26
    Ver traducción
  • The scientific research team has proposed a modeless Raman fiber laser using a traditional resonant cavity structure

    The pump source, gain material, and resonant cavity are the three elements that make up a laser. Due to the selective effect of the resonant cavity on the lasing frequency, multi longitudinal mode operation is one of the characteristics of fiber lasers based on traditional resonant cavity structures, manifested as periodic beat peaks in the radio frequency (RF) spectrum and periodic fluctuations i...

    2023-08-15
    Ver traducción
  • Xunlei Laser 20000W Large Format Laser Cutting Machine Winning the Bid for YD Company, a Famous Enterprise in the Steel Structure Industry

    Recently, the Xunlei Laser HI series 20000W large format laser cutting machine won the bid of YD Company, a well-known steel structure company, to help YD steel structure improve quality, efficiency, and green transformation!Established in 2009, YD Steel Structure is a large-scale specialized steel formwork enterprise that has established deep business partnerships with leading construction indust...

    2023-11-06
    Ver traducción